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Differentiating patients with obstructive sleep apnea from healthy controls based on heart rate-blood pressure coupling quantified by entropy-based indices

Abstract

We introduce an entropy-based classification method for pairs of sequences (ECPS) for quantifying mutual dependencies in heart rate and beat-to-beat blood pressure recordings. The purpose of the method is to build a classifier for data in which each item consists of two intertwined data series taken for each subject. The method is based on ordinal patterns and uses entropy-like indices. Machine learning is used to select a subset of indices most suitable for our classification problem in order to build an optimal yet simple model for distinguishing between patients suffering from obstructive sleep apnea and a control group.

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DOI:
Digital Object Identifier (open in new tab) 10.1063/5.0158923
License
Copyright (2023 AIP Publishing)

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Category:
Articles
Type:
artykuły w czasopismach
Published in:
CHAOS pages 1 - 13,
ISSN: 1054-1500
Language:
English
Publication year:
2023
Bibliographic description:
Pilarczyk P., Graff G., Amigo J., Tessmer K., Narkiewicz K., Graff B.: Differentiating patients with obstructive sleep apnea from healthy controls based on heart rate-blood pressure coupling quantified by entropy-based indices// CHAOS -Vol. 10,iss. art id 103140 (2023), s.1-13
DOI:
Digital Object Identifier (open in new tab) 10.1063/5.0158923
Sources of funding:
  • Free publication
Verified by:
Gdańsk University of Technology

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