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An accurate emotion recognition system using ECG and GSR signals and matching pursuit method

机译:使用ECG和GSR信号的精确情感识别系统以及匹配追踪方法

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Background The purpose of the current study was to examine the effectiveness of Matching Pursuit (MP) algorithm in emotion recognition. Methods Electrocardiogram (ECG) and galvanic skin responses (GSR) of 11 healthy students were collected while subjects were listening to emotional music clips. Applying three dictionaries, including two wavelet packet dictionaries (Coiflet, and Daubechies) and discrete cosine transform, MP coefficients were extracted from ECG and GSR signals. Next, some statistical indices were calculated from the MP coefficients. Then, three dimensionality reduction methods, including Principal Component Analysis (PCA), Linear Discriminant Analysis, and Kernel PCA were applied. The dimensionality reduced features were fed into the Probabilistic Neural Network in subject-dependent and subject-independent modes. Emotion classes were described by a two-dimensional emotion space, including four quadrants of valence and arousal plane, valence based, and arousal based emotional states. Results Using PCA, the highest recognition rate of 100% was achieved for sigma?=?0.01 in all classification schemes. In addition, the classification performance of ECG features was evidently better than that of GSR features. Similar results were obtained for subject-dependent emotion classification mode. Conclusions An accurate emotion recognition system was proposed using MP algorithm and wavelet dictionaries.
机译:背景技术本研究的目的是检验匹配追踪(MP)算法在情绪识别中的有效性。方法收集11名健康学生在听情感音乐片段时的心电图和皮肤电反应。应用三个字典,包括两个小波包字典(Coiflet和Daubechies)和离散余弦变换,从ECG和GSR信号中提取MP系数。接下来,根据MP系数计算一些统计指标。然后,应用了三维降维方法,包括主成分分析(PCA),线性判别分析和内核PCA。降维特征以与受试者相关和与受试者无关的方式输入到概率神经网络。情感类别由二维情感空间描述,包括价态和唤醒平面的四个象限,基于价态和基于唤醒的情感状态。结果使用PCA,在所有分类方案中σ= 0.01时都达到了100%的最高识别率。此外,ECG功能的分类性能明显优于GSR功能。对于主题相关的情感分类模式,也获得了相似的结果。结论提出了一种基于MP算法和小波字典的准确情绪识别系统。

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