
About
Bernhard Reuter is a researcher at the University of Tübingen in the Department of Computer Science, focusing on machine learning methods for biomedical data. He develops tools for drug-resistance prediction in tuberculosis and HIV, and created the Generalized Perron Cluster Cluster Analysis (G-PCCA) for modeling non-equilibrium systems.
Education
- Dr. rer. nat. in Theoretical Physics (2018), University of Kassel
- Dipl.-Phys. in Physics (2013), University of Kassel
Research Highlights: His work bridges machine learning with biomolecular dynamics, particularly in drug resistance prediction and non-equilibrium system modeling. Publications in Nature Methods and Journal of Chemical Physics demonstrate his technical contributions.
Awards
- GDCH travel scholarships (2014, 2016)
- CINSAT poster award (2013)
- Doctoral scholarship (2013)
- Studienstiftung scholarship (2006)
He has contributed to open-source software projects like pyGPCCA and COmic, and collaborated with institutions including the Max Planck Institute for Biological Cybernetics.
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