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A convolutional network for the classification of sleep stages

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http://hdl.handle.net/2183/21120
Atribución 3.0 España
Except where otherwise noted, this item's license is described as Atribución 3.0 España
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  • Investigación (FIC) [1678]
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Title
A convolutional network for the classification of sleep stages
Author(s)
Fernández-Varela, Isaac
Hernández-Pereira, Elena
Moret-Bonillo, Vicente
Date
2018-09-14
Citation
Fernández-Varela, I.; Hernández-Pereira, E.; Moret-Bonillo, V. A Convolutional Network for the Classification of Sleep Stages. Proceedings 2018, 2, 1174.
Abstract
[Abstract] The classification of sleep stages is a crucial task in the context of sleep medicine. It involves the analysis of multiple signals thus being tedious and complex. Even for a trained physician scoring a whole night sleep study can take several hours. Most of the automatic methods trying to solve this problem use human engineered features biased for a specific dataset. In this work we use deep learning to avoid human bias. We propose an ensemble of 5 convolutional networks achieving a kappa index of 0.83 when classifying 500 sleep studies.
Keywords
Sleep staging
Convolutional neural network
Classification
 
Description
Trátase dun resumo estendido da ponencia
Editor version
https://doi.org/10.3390/proceedings2181174
Rights
Atribución 3.0 España
ISSN
2504-3900

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