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Weighted spectral features based on local Hu moments for speech emotion recognition

机译:基于局部胡矩的加权谱特征用于语音情感识别

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Features greatly influence the results of speech emotion recognition, among which Mel-frequency Cepstral Coefficients (MFCC) is the most commonly used in speech emotion. However, MFCC does not consider both the relationship among neighbor coefficients of Mel filters of a frame and the relationship among coefficients of Mel filters of neighbor frames, which possibly leads to lose many useful features from spectrogram. This paper presents novel weighted spectral features based on Local Hu moments. The idea is motivated by that the energy on spectrogram would drastically vary with some emotion types such as angry and happy, while it would slightly change with other emotion types such as sadness and fear. This phenomenon would affect the local energy distribution of spectrogram in both time axis and frequency axis of spectrogram. To describe local energy distribution of spectrogram, Hu moments computed from local regions of spectrogram are used, as Hu moments can evaluate the degree how the energy is concentrated to the center of energy gravity of local region of spectrogram and can significantly vary with the speech emotion types. The conducted experiments validate the proposed features in terms of the effectiveness of the speech emotion recognition. (C) 2014 Elsevier Ltd. All rights reserved.
机译:特征极大地影响了语音情感识别的结果,其中,密尔频率倒谱系数(MFCC)是语音情感中最常用的。但是,MFCC既没有考虑帧的Mel滤波器的相邻系数之间的关系,也没有考虑相邻帧的Mel滤波器的系数之间的关系,这可能会导致频谱图失去许多有用的特征。本文提出了基于局部Hu矩的新型加权频谱特征。这个想法的动机是,频谱图上的能量会随着某些情绪类型(例如愤怒和快乐)而急剧变化,而随着其他情绪类型(例如悲伤和恐惧)而略有变化。这种现象会影响频谱图在时间轴和频率轴上的局部能量分布。为了描述频谱图的局部能量分布,使用了从频谱图的局部区域计算的Hu矩,因为Hu矩可以评估能量如何集中到频谱图局部区域的能量重心,并且可以随语音情感而显着变化。类型。进行的实验从语音情感识别的有效性方面验证了所提出的特征。 (C)2014 Elsevier Ltd.保留所有权利。

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