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SAL: Sign Agnostic Learning of Shapes From Raw Data

SAL: Sign Agnostic Learning of Shapes From Raw Data

Recently, neural networks have been used as implicit representations for surface reconstruction, modelling, learning, and generation. So far, training neural networks to be implicit representations of surfaces required training data sampled from a ground-truth signed implicit functions such as signed distance or occupancy functions, which are notoriously hard to compute. …