Mandarin emotion recognition based on multifractal theory towards human-robot interaction

Hong Liu, Wenjuan Zhang
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引用次数: 7

Abstract

Emotion recognition is crucially related with friendly and humanistic human-robot interaction. Our paper aims at developing a new kind of features to mandarin emotional speech signal based on multifractal theory. Firstly, phase space structure differentiate with respect of initials and finals indicate the fractal phenomenon during speech produce process. Further, positive largest Lyapunov exponent proved existing chaos. To quantitatively measure the chaos, extension of fractal concept-multifractal is calculated by multi-fractal detrended fluctuation analysis (MFDFA) and Legendre transformation. Besides, the underlying fractal characteristics during calculation process is analyzed, which further verifies the emotional speech is multifractal rather than monofractal. Multifractal spectrum visually shows that various emotion is differentiated with each other. After extracting parameters of mulfractal spectrum, several comparative experiments are established, which is implemented with BP neural network and support vector machine (SVM) respectively to hence the comparison between our approach and conventional one. At last, improvement in recognition accuracies demonstrates that our method is available and effective.
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基于多重分形理论的人机交互普通话情感识别
情感识别与友好、人性化的人机交互密切相关。本文旨在基于多重分形理论开发一种新的汉语情感语音信号特征。首先,声母和韵母的相空间结构差异表明语音产生过程中存在分形现象。进一步,正最大Lyapunov指数证明了混沌的存在。为了定量测量混沌,利用多重分形去趋势波动分析(MFDFA)和勒让德变换计算了分形概念的扩展——多重分形。此外,分析了计算过程中潜在的分形特征,进一步验证了情感语音是多重分形的,而不是单分形的。多重分形谱直观地显示了各种情绪之间的相互区分。在提取多重分形谱参数的基础上,建立了若干对比实验,分别采用BP神经网络和支持向量机(SVM)实现,并与传统方法进行了比较。识别精度的提高证明了该方法的有效性。
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