Proceedings on Automation in Medical Engineering
Vol. 3 No. 1 (2026): Proc AUTOMED

18th Interdisciplinary AUTOMED Symposium in Collaboration with the TC Medical Robotics, 2459

Data-driven patient-specific fluid resuscitation

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Mohammad Alsalti , Matthias Müller 

Abstract

Automated fluid resuscitation systems determine fluid infusion rates for patients recovering from, e.g., hemorrhage or dehydration. Instead of relying on models that require patient-specific parameter identification, we present a data-driven patient-specific alternative that bypasses modeling and identification. Specifically, we implement a predictive controller that only uses blood pressure data and manages to regulate the patient’s blood pressure to a specified setpoint. We demonstrate the results in a simulation on 100 virtual patients created using a well-established model of cardiovascular hemodynamics.

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