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Sex‐related patterns in the electroencephalogram and their relevance in machine learning classifiers

Deep learning is increasingly being proposed for detecting neurological and psychiatric diseases from electroencephalogram (EEG) data but the method is prone to inadvertently incorporate biases from training data and exploit illegitimate patterns. The recent demonstration that deep learning can dete...

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Autores principales: Jochmann, Thomas, Seibel, Marc S., Jochmann, Elisabeth, Khan, Sheraz, Hämäläinen, Matti S., Haueisen, Jens
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley & Sons, Inc. 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10472918/
https://www.ncbi.nlm.nih.gov/pubmed/37461294
http://dx.doi.org/10.1002/hbm.26417
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author Jochmann, Thomas
Seibel, Marc S.
Jochmann, Elisabeth
Khan, Sheraz
Hämäläinen, Matti S.
Haueisen, Jens
author_facet Jochmann, Thomas
Seibel, Marc S.
Jochmann, Elisabeth
Khan, Sheraz
Hämäläinen, Matti S.
Haueisen, Jens
author_sort Jochmann, Thomas
collection PubMed
description Deep learning is increasingly being proposed for detecting neurological and psychiatric diseases from electroencephalogram (EEG) data but the method is prone to inadvertently incorporate biases from training data and exploit illegitimate patterns. The recent demonstration that deep learning can detect the sex from EEG implies potential sex‐related biases in deep learning‐based disease detectors for the many diseases with unequal prevalence between males and females. In this work, we present the male‐ and female‐typical patterns used by a convolutional neural network that detects the sex from clinical EEG (81% accuracy in a separate test set with 142 patients). We considered neural sources, anatomical differences, and non‐neural artifacts as sources of differences in the EEG curves. Using EEGs from 1140 patients, we found electrocardiac artifacts to be leaking into the supposedly brain activity‐based classifiers. Nevertheless, the sex remained detectable after rejecting heart‐related and other artifacts. In the cleaned data, EEG topographies were critical to detect the sex, but waveforms and frequencies were not. None of the traditional frequency bands was particularly important for sex detection. We were able to determine the sex even from EEGs with shuffled time points and therewith completely destroyed waveforms. Researchers should consider neural and non‐neural sources as potential origins of sex differences in their data, they should maintain best practices of artifact rejection, even when datasets are large, and they should test their classifiers for sex biases.
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spelling pubmed-104729182023-09-02 Sex‐related patterns in the electroencephalogram and their relevance in machine learning classifiers Jochmann, Thomas Seibel, Marc S. Jochmann, Elisabeth Khan, Sheraz Hämäläinen, Matti S. Haueisen, Jens Hum Brain Mapp Research Articles Deep learning is increasingly being proposed for detecting neurological and psychiatric diseases from electroencephalogram (EEG) data but the method is prone to inadvertently incorporate biases from training data and exploit illegitimate patterns. The recent demonstration that deep learning can detect the sex from EEG implies potential sex‐related biases in deep learning‐based disease detectors for the many diseases with unequal prevalence between males and females. In this work, we present the male‐ and female‐typical patterns used by a convolutional neural network that detects the sex from clinical EEG (81% accuracy in a separate test set with 142 patients). We considered neural sources, anatomical differences, and non‐neural artifacts as sources of differences in the EEG curves. Using EEGs from 1140 patients, we found electrocardiac artifacts to be leaking into the supposedly brain activity‐based classifiers. Nevertheless, the sex remained detectable after rejecting heart‐related and other artifacts. In the cleaned data, EEG topographies were critical to detect the sex, but waveforms and frequencies were not. None of the traditional frequency bands was particularly important for sex detection. We were able to determine the sex even from EEGs with shuffled time points and therewith completely destroyed waveforms. Researchers should consider neural and non‐neural sources as potential origins of sex differences in their data, they should maintain best practices of artifact rejection, even when datasets are large, and they should test their classifiers for sex biases. John Wiley & Sons, Inc. 2023-07-17 /pmc/articles/PMC10472918/ /pubmed/37461294 http://dx.doi.org/10.1002/hbm.26417 Text en © 2023 The Authors. Human Brain Mapping published by Wiley Periodicals LLC. https://creativecommons.org/licenses/by/4.0/This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Articles
Jochmann, Thomas
Seibel, Marc S.
Jochmann, Elisabeth
Khan, Sheraz
Hämäläinen, Matti S.
Haueisen, Jens
Sex‐related patterns in the electroencephalogram and their relevance in machine learning classifiers
title Sex‐related patterns in the electroencephalogram and their relevance in machine learning classifiers
title_full Sex‐related patterns in the electroencephalogram and their relevance in machine learning classifiers
title_fullStr Sex‐related patterns in the electroencephalogram and their relevance in machine learning classifiers
title_full_unstemmed Sex‐related patterns in the electroencephalogram and their relevance in machine learning classifiers
title_short Sex‐related patterns in the electroencephalogram and their relevance in machine learning classifiers
title_sort sex‐related patterns in the electroencephalogram and their relevance in machine learning classifiers
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10472918/
https://www.ncbi.nlm.nih.gov/pubmed/37461294
http://dx.doi.org/10.1002/hbm.26417
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