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Novel expressive speech classification algorithm based on multi-level extraction techniques

机译:基于多级提取技术的新型表达语音分类算法

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Presented paper deals with problems related to automatic recognition of expressive speech states. The analysis was performed using the Slovene part of the emotional speech corpus recorded under the international project Interface. The main focuses of presented emotional multi-level based feature extraction method are not the emotions itself but rather three expressive states: positive, negative and neutral. The main advantage of proposed method is the idea of multi-level feature extraction approach thus overcoming the problems related to time-frequency resolution compromise of signal analysis. For analysis, feature vectors of 210 elements were extracted for each analysis frame, with a window of analysis varying from 8–128ms.
机译:提出的论文涉及与表达性语音状态的自动识别有关的问题。使用国际项目Interface下记录的情感言语语料库的Slovene部分进行了分析。提出的基于情感的多层次特征提取方法的主要重点不是情感本身,而是三种表达状态:积极,消极和中立。所提出的方法的主要优点是多级特征提取方法的思想,从而克服了与信号分析的时频分辨率折衷有关的问题。为了进行分析,为每个分析帧提取了210个元素的特征向量,分析窗口范围为8–128ms。

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