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An Automated System for Grading EEG Abnormality in Term Neonates with Hypoxic-Ischaemic Encephalopathy

机译:足月新生儿缺氧缺血性脑病脑电图异常分级自动系统

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摘要

Automated analysis of the neonatal EEG has the potential to assist clinical decision making for neonates with hypoxic-ischaemic encephalopathy. This paper proposes a method of automatically grading the degree of abnormality in an hour long epoch of neonatal EEG. The automated grading system (AGS) was based on a multi-class linear classifier grading of short-term epochs of EEG which were converted into a long-term grading of EEG using a majority vote operation. The features used in the AGS were summary measurements of two sub-signals extracted from a quadratic time-frequency distribution: the amplitude modulation and instantaneous frequency. These sub-signals were based on a model of EEG as a multiplication of a coloured random process with a slowly varying pseudo-periodic waveform and may be related to macroscopic neurophysiological function. The 4 grade AGS had a classification accuracy of 83% compared to human annotation of the EEG (level of agreement, κ = 0.76). Features estimated on the developed sub-signals proved more effective at grading the EEG than measures based solely on the EEG and the incorporation of additional sub-grades based on EEG states into the AGS also improved performance.
机译:新生儿脑电图的自动化分析有可能有助于新生儿缺氧缺血性脑病的临床决策。本文提出了一种自动分级新生儿脑电图的异常程度的方法。自动分级系统(AGS)基于脑电图短期时期的多类线性分类器分级,并使用多数投票操作将其转换为脑电图的长期分级。 AGS中使用的功能是从二次时频分布中提取的两个子信号的汇总测量:幅度调制和瞬时频率。这些子信号基于EEG模型,该模型是有色随机过程与缓慢变化的伪周期波形的乘积,并且可能与宏观神经生理功能有关。与人类对EEG的注释相比,4级AGS的分类准确度为83%(一致度,κ= 0.76)。与仅基于EEG的度量相比,在已开发的子信号上估计的功能被证明比对EEG进行评估更有效,并且将基于EEG状态的其他子等级合并到AGS中也可以改善性能。

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