Detection of Epileptic Seizures With Tangent Space Mapping Features of EEG Signals

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Abstract

Detection of epileptic seizures from EEG signals is well-studied topic for the last couple of decades. Lately, automated signal processing and machine learning methods were developed to detect epileptic seizures. However, most of the methods are tailored to subjects and require fine tuning of many parameters. In this study, we proposed to use Riemannian geometry-based signal processing method that already showed superior performance on brain-computer interface problems, to extract features. We showed that tangent space mapping features of EEG signals can be used to detect seizures with high accuracy and precision.

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Altindis, Fatih/0000-0002-3891-935X; Yilmaz, Bulent/0000-0003-2954-1217;

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Riemannian Geometry, Tangent Space Mapping, EEG, Seizure Detection

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