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Improved speech emotion recognition using error correcting codes

机译:使用纠错码改进语音情感识别

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We propose the use of the popular error correcting codes (ECC) in a multi-class audio emotion recognition scenario to improve the emotion recognition accuracy in spoken speech. In this paper, we visualize the emotion recognition system as a noisy communication channel, thus motivating the use of ECC in the emotion recognition process. We assume the emotion recognition process consists of an audio feature extraction module followed by an artificial neural network (ANN) for emotion (represented by a binary string) classification. The noisy communication channel, in our formulation, is the insufficiently learnt ANN classifier which in turn results in an erroneous (binary string) emotion classification. In our system, we use ECC to encode the binary string representing the emotion class using a Block Coder (BC). We show through rigorous experimentation, on Emo-DB database, that the use of ECC improves the recognition accuracy of the emotion classification system in the range of (4.6 - 9.35)% in comparison to the baseline ANN-based emotion classification system.
机译:我们建议在多级音频情感识别方案中使用流行的纠错码(ECC),以提高口语中的情感识别准确性。在本文中,我们将情感识别系统视为嘈杂的通信渠道,从而激励ECC在情绪识别过程中的使用。我们假设情感识别过程包括音频特征提取模块,然后是用于情感的人工神经网络(ANN)(由二进制字符串表示)分类。在我们的制定中,嘈杂的通信渠道是学习的ANN分类器不足,这反过来导致错误(二进制字符串)情感分类。在我们的系统中,我们使用ECC使用块编码器(BC)编码表示情绪类的二进制字符串。我们通过严格的实验表明EMO-DB数据库,ECC的使用与基于基于基于基于基于基准的情感分类系统相比,ECC的使用可以提高情感分类系统的识别准确性(4.6 - 9.35)%。

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