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  • title: Controllable and Compositional Generation with Latent-Space Energy-Based Models
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            Controllable and Compositional Generation with Latent-Space Energy-Based Models
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            Controllable and Compositional Generation with Latent-Space Energy-Based Models

            6. prosince 2021

            Řečníci

            WN

            Weili Nie

            Sprecher:in · 0 Follower:innen

            AV

            Arash Vahdat

            Sprecher:in · 0 Follower:innen

            AA

            Anima Anandkumar

            Sprecher:in · 1 Follower:in

            O prezentaci

            Controllable generation is one of the key requirements for successful adoption of deep generative models in real-world applications, but it still remains challenging. In particular, the compositional ability to generate novel concept combinations is out of reach for most current models. In this work, we use energy-based models (EBMs) to handle compositional generation over a set of attributes. To make them scalable to high-resolution image generation, we introduce an EBM in the latent space of a…

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            NeurIPS 2021

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            O organizátorovi (NeurIPS 2021)

            Neural Information Processing Systems (NeurIPS) is a multi-track machine learning and computational neuroscience conference that includes invited talks, demonstrations, symposia and oral and poster presentations of refereed papers. Following the conference, there are workshops which provide a less formal setting.

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