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September 10, 2025npj Systems Biology and Applications15 citationsOpen Access

Current state and open problems in universal differential equations for systems biology

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MPMaren PhilippsNSNina SchmidJHJan Hasenauer

Key Points

  • Performance of universal differential equations is notably affected by noise and limited data, reducing reliability.
  • Systematic training pipelines are crucial to optimize universal differential equations for accurate predictions in complex biological systems.
  • Addressing challenges like stiff dynamics enhances the interpretability of parameters in mechanistic models.
  • Regularisation techniques show promise in improving accuracy and interpretability of universal differential equations.

Abstract

Universal Differential Equations (UDEs) combine mechanistic differential equations with data-driven artificial neural networks, forming a flexible framework for modelling complex biological systems. This hybrid approach leverages prior knowledge and data to uncover unknown processes and deliver accurate predictions. However, UDEs face challenges in efficient and reliable training due to stiff dynamics and noisy, sparse data common in biology, and in ensuring the interpretability of the parameters of the mechanistic model. We investigate these challenges and evaluate UDE performance on realistic biological scenarios, providing a systematic training pipeline. Our results demonstrate the versatility of UDEs in systems biology and reveal that noise and limited data significantly degrade performance, but regularisation can improve accuracy and interpretability. By addressing key challenges and offering practical solutions, this work advances UDE methodology and underscores its potential in tackling complex problems in systems biology.

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Cite This Study

Philipps et al. (2025) studied this question.

synapsesocial.com/papers/68c1dda254b1d3bfb60fc67bhttps://doi.org/10.1038/s41540-025-00550-w
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