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Speech emotion recognition based on supervised locally linear embedding

机译:基于监督局部线性嵌入的语音情感识别

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摘要

Speech emotion recognition is a new and challenging subject in signal processing area. In this paper, a new feature extraction method based on supervised locally linear embedding (SLLE) is proposed for speech emotion recognition. SLLE is used to implement nonlinear dimensionality reduction on high-dimensional emotional speech features with nonlinear manifold structure. And then the enhanced low-dimensional data representations embedded with SLLE are extracted for speech emotion recognition. Experimental results on natural emotional Chinese speech database confirm the validity and high performance of the proposed method.
机译:语音情感识别是信号处理区域中的一个新的和具有挑战性的主题。本文提出了一种基于监督局部线性嵌入(SLLE)的新特征提取方法,用于语音情感识别。 Slle用于实现具有非线性歧管结构的高维情绪语音特征的非线性维度降低。然后提取嵌入Slle的增强的低维数据表示以用于语音情绪识别。天然情感中文语音数据库的实验结果证实了提出的方法的有效性和高性能。

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