2024/10/23 by Ahmed A. Elhag, Elhag, Ahmed A., T. Konstantin Rusch +6 · 1 voice · 4 citations
Computer Science · #Machine Learning and Algorithms #Neural Networks and Applications #Seismology and Earthquake Studies #cs.LG
paper · pdf · doi:10.48550/arxiv.2410.17878
openalex publication_date 2024/10/23 · openalex created_date 2025/10/10 · openalex updated_date 2026/07/28
Incorporating equivariance as an inductive bias into deep learning architectures to take advantage of the data symmetry has been successful in multiple applications, such as chemistry and dynamical systems. In particular, roto-translations are crucial for effectively modeling geometric graphs and molecules, where understanding the 3D structures enhances generalization. However, strictly equivariant models often pose challenges due to their higher computational complexity. In this paper, we introduce REMUL, a training procedure that learns approximate equivariance for unconstrained networks via multitask learning. By formulating equivariance as a tunable objective alongside the primary task loss, REMUL offers a principled way to control the degree of approximate symmetry, relaxing the rigid constraints of traditional equivariant architectures. We show that unconstrained models (which do not build equivariance into the architecture) can learn approximate symmetries by minimizing an additional simple equivariance loss. This enables quantitative control over the trade-off between enforcing equivariance constraints and optimizing for task-specific performance. Our method achieves competitive performance compared to equivariant baselines while being significantly faster (up to 10× at inference and 2.5× at training), offering a practical and adaptable approach to leveraging symmetry in unconstrained architectures.