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October 16, 20250 citationsOpen Access

Structured Chemical Reaction Modeling with Multitask Graph Neural Networks

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MAMaryam AsteroALAnchen LiECElena Casiraghi

Key Points

  • Jointly predicting mappings, centers, and classes boosts performance in chemical reaction modeling, highlighting multitask learning's benefits.
  • MARCC achieves state-of-the-art results on the USPTO-50K benchmark, indicating significant improvement in reaction classification and interpretation.
  • The architecture's multitask supervision enhances accuracy across all tasks, showing a structured representation of reaction mechanisms.
  • By using graph neural networks, MARCC leverages structural dependencies, overcoming limitations of previous isolated approaches.

Abstract

Modeling chemical reactions requires connecting fine-grained atom--bond edits with broader semantic categories. Yet, most machine learning approaches model these aspects in isolation: atom mapping, reaction center identification, and reaction classification are treated as separate problems. This separation limits accuracy, interpretability, and generalization. In this work, we argue that multitask learning provides a natural and powerful framework for reaction modeling. By jointly predicting mappings, centers, and classes within a single graph neural network, models can leverage structural dependencies between tasks. We proposed MARCC (Mapping-Assisted Reaction Center and Classification), a multitask architecture that achieves state-of-the-art performance on the USPTO-50K benchmark. MARCC demonstrates that multitask supervision not only improves accuracy across all tasks but also provides a structured representation of reaction mechanisms.

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Cite This Study

Astero et al. (2025) studied this question.

synapsesocial.com/papers/68f04acce559138a1a06e8a8https://doi.org/10.1101/2025.10.13.682169
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