Iterative SE(3)-Transformers
Fuchs, Fabian B., Wagstaff, Edward, Dauparas, Justas, Posner, Ingmar
When manipulating three-dimensional data, it is possible to ensure that rotational and translational symmetries are respected by applying so-called SE(3)-equivariant models. Protein structure prediction is a prominent example of a task which displays these symmetries. Recent work in this area has successfully made use of an SE(3)-equivariant model, applying an iterative SE(3)-equivariant attention mechanism. Motivated by this application, we implement an iterative version of the SE(3)-Transformer, an SE(3)-equivariant attention-based model for graph data. We address the additional complications which arise when applying the SE(3)-Transformer in an iterative fashion, compare the iterative and single-pass versions on a toy problem, and consider why an iterative model may be beneficial in some problem settings. We make the code for our implementation available to the community.
Mar-16-2021
- Country:
- Asia > Middle East
- Republic of Türkiye > Adıyaman Province > Adiyaman (0.04)
- Europe > United Kingdom
- England > Oxfordshire > Oxford (0.14)
- North America > United States (0.14)
- Asia > Middle East
- Genre:
- Research Report (0.64)
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- Technology: