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Application of fractional Fourier transform in feature extraction from ELECTROCARDIOGRAM and GALVANIC SKIN RESPONSE for emotion recognition

机译:分数傅里叶变换在情感识别中的心电图和电流响应特征提取中的应用

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Emotion recognition from physiological signals plays an essential role in human-computer interaction and affective computing. This paper aims to study the effectiveness of Fractional Fourier Transform (FrFT) as a novel feature extraction method in improving the accuracy of emotion recognition from physiological signals. Emotion detection is performed in two dimensions, of arousal and valence, using Electrocardiogram (ECG) and galvanic skin response (GSR) signals recorded on the ASCERTAIN database. Features extracted in the FrFT, time, and frequency domains are classified using two binary SVMs. The results suggest the usefulness of the phase information of the FrFT coefficients in arousal and valence detection and above-chance emotion recognition is achieved with both ECG and GSR signals. Comparison of the time domain features, frequency domain features, and their combination shows that FrFT are more distinct in emotion detection. The best recognition accuracy in both valence and arousal is achieved from the phase information of the FrFT coefficients using the ECG signal, which is equal to 78.32% and 76.83%, respectively.
机译:生理信号的情感识别在人机互动和情感计算中起着重要作用。本文旨在研究分数傅里叶变换(FRFT)作为一种新颖特征提取方法,提高生理信号的情绪识别的准确性。情绪检测以唤醒和价的两个维度,使用心电图(ECG)和镀锌信号(GSR)信号在确定数据库上进行。在FRFT,时间和频域中提取的功能使用两个二进制SVM分类。结果表明,通过ECG和GSR信号实现了唤醒和价值检测中FRFT系数的相位信息的有用性,并且通过了ECG和GSR信号实现了差异的情感识别。时间域特征,频域特征及其组合的比较显示FRFT在情感检测中更为不同。使用ECG信号的FRFT系数的相位信息分别等于78.32%和76.83%,实现了价值和唤醒中的最佳识别精度。

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