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Spherical Message Passing for 3D Graph Networks

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arxiv 2102.05013 v5 pith:HYI7EPP5 submitted 2021-02-09 cs.LG

classification cs.LG
keywords molecularlearningmessagepassingspherenetsphericaldemonstrategraph
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We consider representation learning of 3D molecular graphs in which each atom is associated with a spatial position in 3D. This is an under-explored area of research, and a principled message passing framework is currently lacking. In this work, we conduct analyses in the spherical coordinate system (SCS) for the complete identification of 3D graph structures. Based on such observations, we propose the spherical message passing (SMP) as a novel and powerful scheme for 3D molecular learning. SMP dramatically reduces training complexity, enabling it to perform efficiently on large-scale molecules. In addition, SMP is capable of distinguishing almost all molecular structures, and the uncovered cases may not exist in practice. Based on meaningful physically-based representations of 3D information, we further propose the SphereNet for 3D molecular learning. Experimental results demonstrate that the use of meaningful 3D information in SphereNet leads to significant performance improvements in prediction tasks. Our results also demonstrate the advantages of SphereNet in terms of capability, efficiency, and scalability. Our code is publicly available as part of the DIG library (https://github.com/divelab/DIG).

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. OrbitAll: A Unified Quantum Mechanical Representation Deep Learning Framework for All Molecular Systems

    cs.LG 2025-07 conditional novelty 6.0 of 10

    A physics-informed graph neural network using spin-polarized orbital features from semi-empirical quantum mechanics predicts energies of charged, open-shell, and solvated molecules with claimed chemical accuracy and 1...

  2. Causal Spherical Hypergraph Networks for Modelling Social Uncertainty

    cs.LG 2025-06

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