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Learning Robust Features using Deep Learning for Automatic Seizure Detection

2016-07-31 · Pierre Thodoroff, Joelle Pineau, Andrew Lim

We present and evaluate the capacity of a deep neural network to learn robust features from EEG to automatically detect seizures. This is a challenging problem because seizure manifestations on EEG are extremely variable both inter- and intra-patient. By simultaneously capturing spectral, temporal and spatial information our recurrent convolutional neural network learns a general spatially invariant representation of a seizure. The proposed approach exceeds significantly previous results obtained on cross-patient classifiers both in terms of sensitivity and false positive rate. Furthermore, our model proves to be robust to missing channel and variable electrode montage.

📄 PDF Abstract BibTeX arXiv:1608.00220

Code (1)

Sharad24/Epileptic-Seizure-Detection

Tasks

Deep LearningEEGElectroencephalogram (EEG)Seizure DetectionSensitivity

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