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Multimodal emotion recognition based on kernel canonical correlation analysis

机译:基于核规范相关分析的多峰情感识别

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摘要

In order to deal with the limitation of the unmoral biometric systems, a multimodality emotion recognition system is proposed based on kernel canonical correlation analysis (KCCA). Because audio signal and facial expressions are two main channels of emotional communication, this approach extracts prosodic features and the visual features in FrFT domain. Those features are fused for the emotion recognition. The experimental results show that the multimodal recognition outperforms the unmoral biometric recognition.
机译:为了解决非道德生物识别系统的局限性,提出了一种基于核规范相关分析(KCCA)的多模态情感识别系统。由于音频信号和面部表情是情感交流的两个主要渠道,因此该方法提取了FrFT域中的韵律特征和视觉特征。这些功能融合了情感识别功能。实验结果表明,多模式识别优于不道德的生物识别。

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