4.5 Article

Heart Rate Variability Analysis for Seizure Detection in Neonatal Intensive Care Units

期刊

BIOENGINEERING-BASEL
卷 9, 期 4, 页码 -

出版社

MDPI
DOI: 10.3390/bioengineering9040165

关键词

neonatal seizures; ECG; HRV; multiscale entropy; NICU

资金

  1. MAECI [PGR01276, MX18MO14]

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This article introduces an ECG-based seizure detection system for newborns, using heart rate variability analysis as a marker. The results show that the system has comparable performance in detecting neonatal seizures.
In Neonatal Intensive Care Units (NICUs), the early detection of neonatal seizures is of utmost importance for a timely clinical intervention. Over the years, several neonatal seizure detection systems were proposed to detect neonatal seizures automatically and speed up seizure diagnosis, most based on the EEG signal analysis. Recently, research has focused on other possible seizure markers, such as electrocardiography (ECG). This work proposes an ECG-based NSD system to investigate the usefulness of heart rate variability (HRV) analysis to detect neonatal seizures in the NICUs. HRV analysis is performed considering time-domain, frequency-domain, entropy and multiscale entropy features. The performance is evaluated on a dataset of ECG signals from 51 full-term babies, 29 seizure-free. The proposed system gives results comparable to those reported in the literature: Area Under the Receiver Operating Characteristic Curve = 62%, Sensitivity = 47%, Specificity = 67%. Moreover, the system's performance is evaluated in a real clinical environment, inevitably affected by several artefacts. To the best of our knowledge, our study proposes for the first time a multi-feature ECG-based NSD system that also offers a comparative analysis between babies suffering from seizures and seizure-free ones.

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