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Improvement of emotion recognition by Bayesian classifier using non-zero-pitch concept

机译:贝叶斯分类器使用非零间距概念改进情绪识别

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Emotion recognition is an important factor in the development of human-robot interactions (HRI) and especially, the pitch information is considered for features related to emotion in speech emotion recognition. Thus, in this paper, the goal is to propose the improved method to recognize the emotion by pitch, "non-zero-pitch", that is, the pitch contour does not have the zero value. We have applied this concept to a Bayesian classifier, and obtained better results for emotion recognition than those attained using the previous pitch contour. In this study, we explain precisely the concept of "non-zero-pitch" and show its superiority over the previous pitch concept. Moreover, it is also important to determine emotions to be classified. In general, many researchers of emotion recognition use the classification of primary emotions such as anger, joy, and so on. However, they differ on the number and kind of primary emotions to use and generally fail to explain the rationale for their classification. Psychologists have also debated the topic of primary emotions. In the present study we propose a classification method of primary emotions for the field of HRI.
机译:情感识别是人机交互(HRI)发展的重要因素,尤其是语音信息被认为是语音信息中与情感相关的特征。因此,在本文中,目标是提出一种改进的方法来通过音高“非零音高”来识别情绪,即音高轮廓不具有零值。我们将此概念应用于贝叶斯分类器,并获得了比使用先前音高轮廓获得的更好的情感识别结果。在这项研究中,我们精确地解释了“非零螺距”的概念,并显示了它比以前的螺距概念优越的地方。此外,确定要分类的情绪也很重要。通常,许多情绪识别研究人员都使用原始情绪的分类,例如愤怒,欢乐等。但是,它们在使用的主要情绪的数量和种类上有所不同,并且通常无法解释其分类的基本原理。心理学家们还争论了原始情绪这个话题。在本研究中,我们为HRI领域提出了一种主要情绪的分类方法。

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