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Equivariant Geometric Scattering Networks via Vector Diffusion Wavelets (2510.01022v1)

Published 1 Oct 2025 in cs.LG, eess.SP, and stat.ML

Abstract: We introduce a novel version of the geometric scattering transform for geometric graphs containing scalar and vector node features. This new scattering transform has desirable symmetries with respect to rigid-body roto-translations (i.e., $SE(3)$-equivariance) and may be incorporated into a geometric GNN framework. We empirically show that our equivariant scattering-based GNN achieves comparable performance to other equivariant message-passing-based GNNs at a fraction of the parameter count.

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