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المؤلفHussein R.
المؤلفElgendi M.
المؤلفWard R.
المؤلفMohamed A.
تاريخ الإتاحة2019-11-04T05:19:30Z
تاريخ النشر2018
اسم المنشور2017 IEEE Global Conference on Signal and Information Processing, GlobalSIP 2017 - Proceedings
اسم المنشور5th IEEE Global Conference on Signal and Information Processing, GlobalSIP 2017
المصدرScopus
الترقيم الدولي الموحد للكتاب 9781509059904
معرّف المصادر الموحدhttp://dx.doi.org/10.1109/GlobalSIP.2017.8309101
معرّف المصادر الموحدhttp://hdl.handle.net/10576/12299
الملخصEpilepsy is a neurological disorder that affects around 70 million people worldwide. Early detection of epileptic seizures has the potential to help patients in improving their quality of life. Electroencephalogram (EEG) has been used to record the brain's electrical activities associated with seizures. This paper presents a fast method for selecting EEG features that are relevant to early detection of epileptic seizures. The feature extraction model is based on LASSO regression and is applied to the EEG spectrum to recognize the EEG spectral features pertinent to seizures. These features are then selected and fed into a random forest (RF) classifier for epileptic seizure recognition. Compared to the state-of-the-art methods, the proposed scheme achieves the highest detection performance of 100% sensitivity, 100% specificity, 100% classification accuracy, and 1.18 Sec detection delay. Furthermore, our model has proven to be robust in noisy and abnormal conditions.
راعي المشروعACKNOWLEDGEMENT This work was made possible by NPRP grant 7-684-1-127 from the Qatar National Research Fund (a member of Qatar Foundation). The statements made herein are solely the responsibility of the authors.
اللغةen
الناشرInstitute of Electrical and Electronics Engineers Inc.
الموضوعcoordinate descent
EEG signals
epileptic seizure
LASSO regression
Random Forest
العنوانHigh performance EEG feature extraction for fast epileptic seizure detection
النوعConference
الصفحات953-957
رقم المجلد2018-January
dc.accessType Abstract Only


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