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Database Profile

GEOM

General information

URL: https://github.com/learningmatter-mit/geom
Full name: Geometric Ensemble Of Molecules
Description: GEOM is a large-scale molecular conformer dataset containing approximately 37 million three-dimensional conformations with energies and statistical weights for over 450,000 molecules, including QM9 and drug-like molecules with experimental physicochemical and biological properties. It supports molecular property prediction and 3D molecular generation.
Year founded: 2020
Last update: 2022-02-09
Version: v1.0
Accessibility:
Accessible
Country/Region: United States

Classification & Tag

Data type:
Data object:
NA
Database category:
Major species:
NA
Keywords:

Contact information

University/Institution: Massachusetts Institute of Technology
Address: Department of Materials Science and Engineering, Massachusetts Institute of Technology, Cambridge, Massachusetts 02139, USA.
City: Cambridge
Province/State: Massachusetts
Country/Region: United States
Contact name (PI/Team): Rafael Gómez-Bombarelli
Contact email (PI/Helpdesk): rafagb@mit.edu

Publications

35449137
GEOM, energy-annotated molecular conformations for property prediction and molecular generation. [PMID: 35449137]
Axelrod S, Gómez-Bombarelli R.

Machine learning (ML) outperforms traditional approaches in many molecular design tasks. ML models usually predict molecular properties from a 2D chemical graph or a single 3D structure, but neither of these representations accounts for the ensemble of 3D conformers that are accessible to a molecule. Property prediction could be improved by using conformer ensembles as input, but there is no large-scale dataset that contains graphs annotated with accurate conformers and experimental data. Here we use advanced sampling and semi-empirical density functional theory (DFT) to generate 37 million molecular conformations for over 450,000 molecules. The Geometric Ensemble Of Molecules (GEOM) dataset contains conformers for 133,000 species from QM9, and 317,000 species with experimental data related to biophysics, physiology, and physical chemistry. Ensembles of 1,511 species with BACE-1 inhibition data are also labeled with high-quality DFT free energies in an implicit water solvent, and 534 ensembles are further optimized with DFT. GEOM will assist in the development of models that predict properties from conformer ensembles, and generative models that sample 3D conformations.

Sci Data. 2022:9(1) | 150 Citations (from Europe PMC, 2026-09-12)

Ranking

All databases:
483/7269 (93.369%)
Health and medicine:
123/1919 (93.643%)
483
Total Rank
145
Citations
36.25
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Record metadata

Created on: 2026-08-26
Curated by:
Yuxi Liu [2026-08-27]
Xiaoxuan Gao [2026-08-26]