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Matbench discovery–an evaluation framework for machine learning crystal stability prediction

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

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Open Materials 2024 (OMat24) Inorganic Materials Dataset and Models

cond-mat.mtrl-sci · 2024-10-16 · conditional · novelty 8.0 · 2 refs

OMat24 releases a new open dataset of 110M+ DFT calculations and EquiformerV2 models achieving SOTA on Matbench Discovery with F1>0.9 for stability and 20 meV/atom accuracy for formation energies.

Compact SO(3) Equivariant Atomistic Foundation Models via Structural Pruning

cs.LG · 2026-05-09 · unverdicted · novelty 6.0

Structural pruning of SO(3) equivariant atomistic models from large checkpoints yields 1.5-4x fewer parameters and 2.5-4x less pre-training compute than small models trained from scratch, while outperforming them on most Matbench Discovery metrics and downstream tasks.

AI-Driven Expansion and Application of the Alexandria Database

cond-mat.mtrl-sci · 2025-12-09 · accept · novelty 6.0

A combined generative model, ML potential, and graph neural network pipeline expands the Alexandria database by 1.3 million DFT-validated compounds with 99% success near the convex hull and releases training data for universal force fields.

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  • Open Materials 2024 (OMat24) Inorganic Materials Dataset and Models cond-mat.mtrl-sci · 2024-10-16 · conditional · none · ref 30 · 2 links

    OMat24 releases a new open dataset of 110M+ DFT calculations and EquiformerV2 models achieving SOTA on Matbench Discovery with F1>0.9 for stability and 20 meV/atom accuracy for formation energies.