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A Preliminary Study on Cross-Databases Emotion Recognition using the Glottal Features in Speech

机译:基于语音声门特征的跨数据库情感识别的初步研究

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While the majority of traditional research in emotional speech recognition has focused on the use of a single database for assessment, it is clear that the lack of large databases has presented a significant challenge in generalizing results for the purposes of building a robust emotion classification system. Recently, work has been reported on cross-training emotional databases to examine consistency and reliability of acoustic measures in performing emotional assessment. This paper presents preliminary results on the use of glottal-based features in cross-testing (i.e., training on one database and testing on another) across 3 databases for emotion recognition of neutral, angry, happy, and sad. A comparative study is also presented using pitch-based features. The results suggest that the glottal features are more robust to the 4-class emotion classification system developed in this study and are able to perform well above chance for several of the cross-testing experiments.
机译:尽管大多数有关情感语音识别的传统研究都集中在使用单个数据库进行评估,但是很明显,缺少大型数据库在为建立健壮的情感分类系统而对结果进行概括时提出了重大挑战。最近,已经报道了关于交叉训练情绪数据库的工作,以检查进行情绪评估时声学测量的一致性和可靠性。本文介绍了在3个数据库的交叉测试中使用基于声门的功能的初步结果(即在一个数据库上进行训练并在另一个数据库上进行测试),以进行中性,愤怒,快乐和悲伤的情绪识别。还使用基于音高的功能进行了比较研究。结果表明,声门特征对本研究中开发的4类情感分类系统更为稳健,并且能够在一些交叉测试实验中胜于偶然。

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