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Bridging the Worlds of Pharmacometrics and Machine Learning.

Kamilė StankevičiūtėJean Baptiste WoillardRichard Wilson PeckPierre MarquetMihaela van der Schaar
Published in: Clinical pharmacokinetics (2023)
Precision medicine requires individualized modeling of disease and drug dynamics, with machine learning-based computational techniques gaining increasing popularity. The complexity of either field, however, makes current pharmacological problems opaque to machine learning practitioners, and state-of-the-art machine learning methods inaccessible to pharmacometricians. To help bridge the two worlds, we provide an introduction to current problems and techniques in pharmacometrics that ranges from pharmacokinetic and pharmacodynamic modeling to pharmacometric simulations, model-informed precision dosing, and systems pharmacology, and review some of the machine learning approaches to address them. We hope this would facilitate collaboration between experts, with complementary strengths of principled pharmacometric modeling and flexibility of machine learning leading to synergistic effects in pharmacological applications.
Keyphrases
  • machine learning
  • artificial intelligence
  • big data
  • mental health
  • deep learning
  • primary care
  • molecular dynamics
  • emergency department
  • general practice