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  • title: Equivariant Architectures for Learning in Deep Weight Spaces
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            Equivariant Architectures for Learning in Deep Weight Spaces
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            Equivariant Architectures for Learning in Deep Weight Spaces

            Jul 24, 2023

            Sprecher:innen

            AN

            Aviv Navon

            Sprecher:in · 1 Follower:in

            AS

            Aviv Shamsian

            Sprecher:in · 1 Follower:in

            IA

            Idan Achituve

            Sprecher:in · 0 Follower:innen

            Über

            Designing machine learning architectures for processing neural networks in their raw weight matrix form is a newly introduced research direction. Unfortunately, the unique symmetry structure of deep weight spaces makes this design very challenging. If successful, such architectures would be capable of performing a wide range of intriguing tasks, from adapting a pre-trained network to a new domainto editing objects represented as functions (INRs or NeRFs). As a first step towards this goal, we pr…

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            ICML 2023

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