Using Machine Learning and Heart Rate Variability Features to Predict Epileptic Seizures

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dc.contributor.author Burguera Burguera, Antonio
dc.date.accessioned 2025-09-23T10:12:04Z
dc.date.available 2025-09-23T10:12:04Z
dc.date.issued 2025-09-23
dc.identifier.citation Burguera Burguera, A. (2019). Using Machine Learning and Heart Rate Variability Features to Predict Epileptic Seizures. European Simulation and Modelling Conference (ESM). en
dc.identifier.uri http://hdl.handle.net/11201/171386
dc.description.abstract [eng] This study constitutes a rst step towards a wearable epileptic seizure prediction device. We exploit the existing correlation between epileptic preictal states and heart rate variability features, since they can be measured by portable electrocardiogram recorders. By explicitly dealing with the intervals of extreme noise that may corrupt the electrocardiogram data during the seizures, our proposal is able to robustly train and use a Support Vector Machine to detect pre-ictal states. The experimental results show particularly good results in terms of positive and negative prediction. They also show the importance of a specic training for each patient. ca
dc.format application/pdf en
dc.relation.ispartof European Simulation and Modelling Conference (ESM), 2019 en
dc.subject 004 - Informàtica ca
dc.subject 61 - Medicina ca
dc.subject 62 - Enginyeria. Tecnologia ca
dc.subject.other Machine learning en
dc.subject.other Biomedical informatics en
dc.subject.other Electrocardio- gram en
dc.subject.other Epilepsy prediction en
dc.title Using Machine Learning and Heart Rate Variability Features to Predict Epileptic Seizures en
dc.type info:eu-repo/semantics/conferenceObject
dc.type conferenceObject
dc.type Article
dc.type info:eu-repo/semantics/article
dc.type info:eu-repo/semantics/acceptedVersion
dc.rights.accessRights info:eu-repo/semantics/openAccess


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