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Classification of Scalp EEG States Prior to Clinical Seizure Onset

机译:临床发作前的头皮脑电图状态分类

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摘要

Objective: To investigate the feasibility of improving the performance of an EEG-based multistate classifier (MSC) previously proposed by our group. Results: Using the random forest (RF) classifiers on the previously reported dataset of patients, but with three improvements to classification logic, the specificity of our alarm algorithm improves from 82.4% to 92.0%, and sensitivity from 87.9% to 95.2%. Discussion: The MSC could be a useful approach for seizure-monitoring both in the clinic and at home. Methods: Three improvements to the MSC are described. Firstly, an additional check using RF outputs is made prior to alarm to confirm increasing probability of a seizure onset state. Secondly, a post-alarm detection horizon that accounts for the seizure state duration is implemented. Thirdly, the alarm decision window is kept constant.
机译:目的:探讨提高我们小组先前提出的基于脑电图的多状态分类器(MSC)性能的可行性。结果:在先前报告的患者数据集上使用随机森林(RF)分类器,但对分类逻辑进行了三处改进,我们的警报算法的特异性从82.4%提高到92.0%,灵敏度从87.9%提高到95.2%。讨论:MSC可能是在诊所和家中进行癫痫发作监测的有用方法。方法:描述了对MSC的三个改进。首先,在报警之前使用RF输出进行额外检查,以确认癫痫发作状态的可能性增加。其次,实施考虑了癫痫发作状态持续时间的警报后检测范围。第三,警报判定窗口保持恒定。

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