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Heart Failure with Preserved Ejection Fraction (HFpEF)

To investigate improvements in HFpEF hemodynamics numerical simulations using different device based therapy approaches (IASD, Co-Pulse, rotodynamic blood pump for ventricle or atrium) were performed. HFpEF patients present with various co-morbidities, risk factors and heterogenous  hemodynamics. Machine learning methods were used to analyze real-world patient data from an observational HFpEF registry to identify hemodynamic HFpEF phenogroups.

Research Group Leader
Marcus Granegger, PhD