Variational Inference over Non-differentiable Cardiac Simulators using Bayesian Optimization

Published: 08 Dec 2017, Last Modified: 08 Oct 2024NeurIPS workshopEveryoneRevisionsCC BY 4.0
Abstract: Performing inference over simulators is generally intractable as their runtime means we cannot compute a marginal likelihood. We develop a likelihood-free inference method to infer parameters for a cardiac simulator, which replicates electrical flow through the heart to the body surface. We improve the fit of a state-of-the-art simulator to an electrocardiogram (ECG) recorded from a real patient.
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