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Study on spike-and-wave detection in epileptic signals using T-location-scale distribution and the K-nearest neighbors classifier

Quintero-Rincón, Antonio et al · RI ITBA · 2019

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"Pattern classification in electroencephalography (EEG) signals is an important problem in biomedical engineering since it enables the detection of brain activity, in particular the early detection of epileptic seizures. In this paper we propose a k-nearest neighbors classification for epileptic EEG signals based on an t-location-scale statistical representation to detect spike-and-waves. The proposed approach is demonstrated on a real dataset containing both spike-and-wave events and normal brain function signals, where our performance is evaluated in terms of classification accuracy, sensitivity and specificity."

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APA 7

Quintero-Rincón, A. E. A. (2019). Study on spike-and-wave detection in epileptic signals using T-location-scale distribution and the K-nearest neighbors classifier. RI ITBA. http://ri.itba.edu.ar/handle/20.500.14769/1718

MLA

Quintero-Rincón, Antonio et al. Study on spike-and-wave detection in epileptic signals using T-location-scale distribution and the K-nearest neighbors classifier. RI ITBA, 2019. http://ri.itba.edu.ar/handle/20.500.14769/1718.

Chicago

Quintero-Rincón, Antonio et al. 2019. Study on spike-and-wave detection in epileptic signals using T-location-scale distribution and the K-nearest neighbors classifier. RI ITBA. http://ri.itba.edu.ar/handle/20.500.14769/1718.

Harvard

Quintero-Rincón, A. E. A. 2019, Study on spike-and-wave detection in epileptic signals using T-location-scale distribution and the K-nearest neighbors classifier, RI ITBA, available at: http://ri.itba.edu.ar/handle/20.500.14769/1718 [Accessed 7 Aug. 2026].

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Title
Study on spike-and-wave detection in epileptic signals using T-location-scale distribution and the K-nearest neighbors classifier
Author / contributors
Quintero-Rincón, Antonio et al
Publisher
RI ITBA
Publication year
2019
Language
English

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