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采用自动睡眠分期技术研究短期反应性迷走神经刺激疗法对睡眠质量的影响。

Investigating the Effect of Short Term Responsive VNS Therapy on Sleep Quality Using Automatic Sleep Staging.

出版信息

IEEE Trans Biomed Eng. 2019 Dec;66(12):3301-3309. doi: 10.1109/TBME.2019.2903987. Epub 2019 Mar 8.

DOI:10.1109/TBME.2019.2903987
PMID:30869604
Abstract

OBJECTIVE

The goal of this work is to objectively evaluate the effectiveness of responsive (or closed-loop) Vagus nerve stimulation (VNS) therapy in sleep quality in patients with medically refractory epilepsy.

METHODS

Using quantitative features obtained from electroencephalography, we first developed a new automatic sleep-staging framework that consists of a multi-class support vector machine (SVM) classification, based on a decision tree approach. To train and evaluate the performance of the framework, we used polysomnographic data of 23 healthy subjects from the PhysioBank database where the sleep stages have been visually annotated. We then used the trained classifier to label the sleep stages using data from 22 patients with epilepsy, treated with short term responsive VNS therapy during an epilepsy-monitoring unit visit, one month after VNS implantation, and ten VNS-naïve patients with epilepsy.

RESULTS

Application of multi-class SVM classifier to classify the three sleep stages of awake, light sleep + rapid eye movement, and deep sleep achieved a classification accuracy of 90%. Results of the application of this methodology to VNS-treated and VNS-naïve patients revealed that the patients treated with short term responsive VNS therapy showed significant increase in sleep efficiency, and significant decrease in seizures plus interictal epileptiform discharges and awakenings.

CONCLUSION

These results indicate that VNS treatment can reduce the epileptiform activities and thus help in achieving better sleep quality for patients with epilepsy.

SIGNIFICANCE

The proposed approach can be used to investigate the effect of long-term VNS therapy on sleep quality.

摘要

目的

本研究旨在客观评估有反应性(或闭环)迷走神经刺激(VNS)治疗对药物难治性癫痫患者睡眠质量的有效性。

方法

我们首先使用脑电图获得的定量特征,基于决策树方法开发了一个新的多类支持向量机(SVM)分类的自动睡眠分期框架。为了训练和评估该框架的性能,我们使用了 PhysioBank 数据库中 23 名健康受试者的多导睡眠图数据,这些数据中的睡眠分期已经过视觉标注。然后,我们使用经过训练的分类器,根据 22 名接受短期有反应性 VNS 治疗的癫痫患者、VNS 植入后一个月以及 10 名 VNS 初治癫痫患者的数据对睡眠分期进行标记。

结果

多类 SVM 分类器应用于分类清醒、轻睡+快速眼动和深睡三个睡眠阶段,分类准确率达到 90%。该方法应用于 VNS 治疗和 VNS 初治患者的结果表明,接受短期有反应性 VNS 治疗的患者睡眠效率显著提高,癫痫发作次数、癫痫样放电和觉醒次数显著减少。

结论

这些结果表明 VNS 治疗可以减少癫痫样活动,从而有助于改善癫痫患者的睡眠质量。

意义

该方法可用于研究长期 VNS 治疗对睡眠质量的影响。

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