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GNNPCSAFT Project

DOI

The project focuses on using Graph Neural Networks (GNN) to estimate the pure-component parameters of the Equation of State PC-SAFT.

Currently, the model takes into account the hard-chain, dispersive, and associative terms of PC-SAFT. Future work on polar and ionic terms is being studied.

Use cases of this package are demonstrated in Jupyter Notebooks:

  • compare.ipynb (Open in Colab): comparison of the performance of trained models
  • training.ipynb (Open in Colab): notebook for model training
  • tuning.ipynb (Open in Colab): notebook for hyperparameter tuning

Model checkpoints can be found at Hugging Face.

Implementations with GNNPCSAFT:

Release files for gnnepcsaft 0.5.2

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Source distribution (sdist)

Source distribution for gnnepcsaft 0.5.2
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gnnepcsaft-0.5.2.tar.gz 18.9 MB Details

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Table of built distributions (wheels) for gnnepcsaft 0.5.2
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gnnepcsaft-0.5.2-py3-none-any.whl Python 3 none any Details

Total release size: 37.9 MB

Release files / gnnepcsaft-0.5.2.tar.gz

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Release files / gnnepcsaft-0.5.2-py3-none-any.whl

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0.5.5

2 release files

0.5.4

2 release files

0.5.3

2 release files

This release

0.5.2 This release

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0.5.0

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0.4.2

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0.4.1

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0.3.1

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0.3.0

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0.2.7

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0.2.6

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0.2.5

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0.2.4

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0.2.2

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0.2.0

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0.1.7

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0.1.5

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0.1.4

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0.1.3

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0.1.2

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0.1.1

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0.1.0

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