The Features of ECG Affected by Mood Change during Imagining the Near Future and a Mental States Estimation Model using the Features

A. Kitagawa, Shohei Kato
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Abstract

: The purpose of this study is to estimate mental states quantitatively using an ECG signals for preventing depression and anxiety. Then, we focus on mood change during imagining the near future. ECG signals are measured from participants during imagining the near future and participants evaluate mood change during that. Features of heart rate variability (HRV) are extracted from this ECG signals and mental states are defined in four levels by mood change. The mental states are estimated using support vector machine (SVM) with forward stepwise as feature selection. The estimation result shows f-measure 0.48 and features contributing to mental states. That indicates the effectiveness of focusing on mood change during imagining the near future and estimating mental states using ECG signals during that.
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想象近期时情绪变化对心电特征的影响及其心理状态估计模型
本研究的目的是利用心电信号定量估计精神状态,以预防抑郁和焦虑。然后,我们关注在想象不久的将来时的情绪变化。在想象不久的将来时测量参与者的心电图信号,并评估参与者在此期间的情绪变化。从心电信号中提取心率变异性特征,并根据情绪变化将精神状态划分为四个层次。使用支持向量机(SVM)对心理状态进行估计,并逐步进行特征选择。估计结果显示f值为0.48,特征对心理状态有贡献。这表明,在想象不久的将来时,关注情绪变化,并在此期间利用心电图信号估计精神状态是有效的。
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