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Data-driven approach to encoding and decoding 3-D crystal structures

2 Pith papers cite this work. Polarity classification is still indexing.

2 Pith papers citing it

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SLayerGen: a Crystal Generative Model for all Space and Layer Groups

cond-mat.mtrl-sci · 2026-05-07 · unverdicted · novelty 8.0

SLayerGen generates crystals invariant to any space or layer group via autoregressive lattice and Wyckoff sampling plus equivariant diffusion, achieving gains over bulk models on diperiodic materials after correcting a prior loss inconsistency for hexagonal groups.

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  • SLayerGen: a Crystal Generative Model for all Space and Layer Groups cond-mat.mtrl-sci · 2026-05-07 · unverdicted · none · ref 42

    SLayerGen generates crystals invariant to any space or layer group via autoregressive lattice and Wyckoff sampling plus equivariant diffusion, achieving gains over bulk models on diperiodic materials after correcting a prior loss inconsistency for hexagonal groups.

  • Latent Diffusion Pretraining for Crystal Property Prediction cs.LG · 2026-05-30 · unverdicted · none · ref 79

    CrysLDNet combines VAE and latent diffusion pretraining on unlabeled crystals to improve graph encoder performance on property prediction by about 4-5% on JARVIS and MP datasets.