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Daniel Felipe Ordonez Apraez

1 accepted papers

2026

Representation Learning for Equivariant Inference with Guarantees

ICML 2026poster

In many real-world applications of regression, conditional probability estimation, and uncertainty quantification, exploiting symmetries rooted in physics or geometry can dramatically improve generalization and sample efficiency. While geometric deep learning has made empirical advances by incorpora…

Cited by 0SourceScholar