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metadata
license: mit
pretty_name: MTO 2D v0
configs:
  - config_name: default
    data_files:
      - split: train
        path: data/train-*
      - split: val
        path: data/val-*
      - split: test
        path: data/test-*

MTO2D v0

EngiBench-compatible MTO2D dataset published as IDEALLab/mto_2d_v0. It contains 5,666 converged (400, 200) half-domain designs with train/val/test splits of 4,249/283/1,134.

Objectives: mean_temperature and power_dissipation are historical source-optimization labels logged before the final MMA/Heaviside update. The stored app/200/gamma design is the subsequent post-update density field.

For the EngiBench problem, a frozen simulator uses the following physics: q=0.01, alphaMax=5025200, Heaviside=59.8, with design updates disabled.

optimal_design is a flattened float list of length 80,000, reshaping to (400, 200) and symmetrical about the vertical axis so as to yield a (400, 400) heat sink.

Citation

@article{drake2026quantize,
  title={To Quantize or Not to Quantize: Effects on Generative Models for Topology Optimization Problems},
  author={Drake, Arthur and Chen, Qiuyi and Wang, Jun and Nejat, Ardalan and Guest, James K and Fuge, Mark},
  journal={Journal of Mechanical Design},
  volume={148},
  number={10},
  pages={101704},
  year={2026},
  publisher={American Society of Mechanical Engineers}
}