Adaptive Segmentation of EEG for Machine Learning Applications

Fuente: arXiv
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Autores principales: Zhou, Johnson, West, Joseph, Ehinger, Krista A., Ren, Zhenming, John, Sam E., Grayden, David B.
Formato: Preprint
Publicado: 2025
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author Zhou, Johnson
West, Joseph
Ehinger, Krista A.
Ren, Zhenming
John, Sam E.
Grayden, David B.
author_facet Zhou, Johnson
West, Joseph
Ehinger, Krista A.
Ren, Zhenming
John, Sam E.
Grayden, David B.
contents Objective. Electroencephalography (EEG) data is derived by sampling continuous neurological time series signals. In order to prepare EEG signals for machine learning, the signal must be divided into manageable segments. The current naive approach uses arbitrary fixed time slices, which may have limited biological relevance because brain states are not confined to fixed intervals. We investigate whether adaptive segmentation methods are beneficial for machine learning EEG analysis. Approach. We introduce a novel adaptive segmentation method, CTXSEG, that creates variable-length segments based on statistical differences in the EEG data and propose ways to use them with modern machine learning approaches that typically require fixed-length input. We assess CTXSEG using controllable synthetic data generated by our novel signal generator CTXGEN. While our CTXSEG method has general utility, we validate it on a real-world use case by applying it to an EEG seizure detection problem. We compare the performance of CTXSEG with fixed-length segmentation in the preprocessing step of a typical EEG machine learning pipeline for seizure detection. Main results. We found that using CTXSEG to prepare EEG data improves seizure detection performance compared to fixed-length approaches when evaluated using a standardized framework, without modifying the machine learning method, and requires fewer segments. Significance. This work demonstrates that adaptive segmentation with CTXSEG can be readily applied to modern machine learning approaches, with potential to improve performance. It is a promising alternative to fixed-length segmentation for signal preprocessing and should be considered as part of the standard preprocessing repertoire in EEG machine learning applications.
format Preprint
id arxiv_https___arxiv_org_abs_2508_20336
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Adaptive Segmentation of EEG for Machine Learning Applications
Zhou, Johnson
West, Joseph
Ehinger, Krista A.
Ren, Zhenming
John, Sam E.
Grayden, David B.
Machine Learning
Signal Processing
Neurons and Cognition
Objective. Electroencephalography (EEG) data is derived by sampling continuous neurological time series signals. In order to prepare EEG signals for machine learning, the signal must be divided into manageable segments. The current naive approach uses arbitrary fixed time slices, which may have limited biological relevance because brain states are not confined to fixed intervals. We investigate whether adaptive segmentation methods are beneficial for machine learning EEG analysis. Approach. We introduce a novel adaptive segmentation method, CTXSEG, that creates variable-length segments based on statistical differences in the EEG data and propose ways to use them with modern machine learning approaches that typically require fixed-length input. We assess CTXSEG using controllable synthetic data generated by our novel signal generator CTXGEN. While our CTXSEG method has general utility, we validate it on a real-world use case by applying it to an EEG seizure detection problem. We compare the performance of CTXSEG with fixed-length segmentation in the preprocessing step of a typical EEG machine learning pipeline for seizure detection. Main results. We found that using CTXSEG to prepare EEG data improves seizure detection performance compared to fixed-length approaches when evaluated using a standardized framework, without modifying the machine learning method, and requires fewer segments. Significance. This work demonstrates that adaptive segmentation with CTXSEG can be readily applied to modern machine learning approaches, with potential to improve performance. It is a promising alternative to fixed-length segmentation for signal preprocessing and should be considered as part of the standard preprocessing repertoire in EEG machine learning applications.
title Adaptive Segmentation of EEG for Machine Learning Applications
topic Machine Learning
Signal Processing
Neurons and Cognition
url https://arxiv.org/abs/2508.20336