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An infant emotion recognition system using visual and audio information

机译:使用视听信息的婴儿情绪识别系统

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This study presents an infant emotion recognition system using visual and audio information for infants aged 1 to 7 months. The system is divided into two parts, image processing and speech processing. The image processing part detects the infant's face and extracts facial expressions features. In the face detection stage, the system selects the largest skin color region as the facial area, while in the facial expressions feature extraction stage, the system uses the local ternary pattern (LTP) technology to label facial contours and calculates their corresponding Zernike moments. In the speech processing part, the system uses common mel-frequency cepstral coefficients (MFCCs) and its delta cepstrum coefficients as vocalization features. Finally, the system uses support vector machines (SVMs) to classify the facial expressions features and vocalization features, respectively. By combining these types of classification results, the system reaches a decision about the infant's emotion. The average recognition rate of infant emotions is 85.3% in the experiments which, in our view, makes the proposed system robust and efficient.
机译:这项研究为1至7个月大的婴儿提供了使用视觉和音频信息的婴儿情感识别系统。该系统分为两个部分,图像处理和语音处理。图像处理部分检测婴儿的脸并提取面部表情特征。在面部检测阶段,系统选择最大的肤色区域作为面部区域,而在面部表情特征提取阶段,系统使用局部三元模式(LTP)技术标记面部轮廓并计算其相应的Zernike矩。在语音处理部分,系统使用常见的mel频率倒谱系数(MFCC)及其delta倒谱系数作为发声功能。最后,系统使用支持向量机(SVM)分别对面部表情特征和发声特征进行分类。通过组合这些类型的分类结果,系统可以做出有关婴儿情绪的决策。在我们的实验中,婴儿情绪的平均识别率为85.3%,这使所提出的系统更强大,更有效。

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