Neural Vector Fields for Implicit Surface Representation and Inference
Edoardo Mello Rella,
Ajad Chhatkuli,
Ender Konukoglu
et al.
Abstract:Neural implicit fields have recently shown increasing success in representing, learning and analysis of 3D shapes. Signed distance fields and occupancy fields are still the preferred choice of implicit representations with well-studied properties, despite their restriction to closed surfaces. With neural networks, unsigned distance fields as well as several other variations and training principles have been proposed with the goal to represent all classes of shapes. In this paper, we develop a novel and yet a f… Show more
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