作者
JM O’Toole, GB Boylan, S Vanhatalo, NJ Stevenson
发表日期
2016/8/1
期刊
Clinical Neurophysiology
卷号
127
期号
8
页码范围
2910-2918
出版商
Elsevier
简介
Objective
To develop an automated estimate of EEG maturational age (EMA) for preterm neonates.
Methods
The EMA estimator was based on the analysis of hourly epochs of EEG from 49 neonates with gestational age (GA) ranging from 23 to 32 weeks. Neonates had appropriate EEG for GA based on visual interpretation of the EEG. The EMA estimator used a linear combination (support vector regression) of a subset of 41 features based on amplitude, temporal and spatial characteristics of EEG segments. Estimator performance was measured with the mean square error (MSE), standard deviation of the estimate (SD) and the percentage error (SE) between the known GA and estimated EMA.
Results
The EMA estimator provided an unbiased estimate of EMA with a MSE of 82 days (SD = 9.1 days; SE = 4.8%) which was significantly lower than a nominal reading (the mean GA in the dataset; MSE of 267 days, SD of …
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