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Classification of Formal and Informal Dialogues Based on Emotion Recognition Features

机译:基于情感识别特征的正式和非正式对话的分类

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Social context is an important part of human communication, hence it is also important for improved human computer interaction. One aspect of social context is the level of formality. Here, motivated by the difference observed between the emotional annotation of formal and informal dialogues in the HuComTech corpus, we introduce a content-free classification scheme based on feature sets designed for emotion recognition. With this method we attain an error rate of 8.8% in the classification of formal and informal dialogues, which means a relative error rate reduction of more than 40% compared to earlier results. By combining our proposed method with earlier models, we were able to further reduce the error rate to below 7%.
机译:社交环境是人类交流的重要组成部分,因此对于改善人机交互也很重要。社会环境的一个方面是形式水平。在此,出于在HuComTech语料库中正式和非正式对话的情感注释之间观察到的差异的动机,我们引入了一种基于非情感分类的方案,该方案基于为情感识别而设计的功能集。通过这种方法,我们在正式和非正式对话的分类中均达到了8.8%的错误率,这意味着与早期结果相比,相对错误率降低了40%以上。通过将我们提出的方法与早期模型相结合,我们能够将错误率进一步降低到7%以下。

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