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Wearable EEG-Based Real-Time System for Depression Monitoring

机译:基于可穿戴式EEG的抑郁监测实时系统

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It has been reported that depression can be detected by electrophysiological signals. However, few studies investigate how to daily monitor patient's electrophysiological signals through a more convenient way for a doctor, especially on the monitoring of electroencephalogram (EEG) signals for depression diagnosis. Since a person's mental state and physiological state are changing over time, the most insured diagnosis of depression requires doctors to collect and analyze subject's EEG signals every day until two weeks for the clinical practice. In this work, we designed a real-time depression monitoring system to capture the user's EEG data by a wearable device and to perform real-time signal filtering, artifacts removal and power spectrum visualization, which could be combined with psychological test scales as an auxiliary diagnosis. In addition to collecting the resting EEG signals for real-time analysis or diagnosis of depression, we also introduced an external audio stimulus paradigm to further make a detection of depression. Through the machine learning method, system can give a credible probability of depression under each stimulus as a user's self-rating score from continuous EEG data. EEG signals collected from 81 early-onset patients and 89 normal controls are used to build the final classification model and to verify the practical performance.
机译:据报道,可以通过电生理信号来检测抑郁。然而,很少有研究探讨如何通过更方便的方式每天监控医生的电生理信号,特别是在监测脑电图(EEG)信号以进行抑郁症诊断方面。由于一个人的精神状态和生理状态会随着时间而变化,因此,最保险的抑郁症诊断要求医生每天收集和分析受试者的EEG信号,直到两周后才能进行临床实践。在这项工作中,我们设计了一个实时抑郁监测系统,以通过可穿戴设备捕获用户的EEG数据并执行实时信号过滤,伪影去除和功率谱可视化,可以与心理测验秤结合使用诊断。除了收集静止的EEG信号以进行实时分析或诊断抑郁症外,我们还引入了外部音频刺激范例以进一步检测抑郁症。通过机器学习方法,系统可以根据连续的EEG数据,在每次刺激下给出可信的抑郁可能性,作为用户的自评分数。从81例早期发作的患者和89例正常对照中收集的EEG信号用于构建最终分类模型并验证实际性能。

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