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The effect of accent in recognizing dialog act in Chinese

机译:口音在汉语对话行为识别中的作用

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Dialogue-act (DA) classification is a key step for the computer to understand natural-language dialogues. Some prosodic features have been recommended to improve the performance of DA classification; however, most of the prosodic features are based on the pitch variations. In the present work, we propose some new attributes for automatic classification of dialogue acts (DAs) from accent features. We test classification performance on solving a 15-DA classification task with the CASIA-CASSIL Corpus. Promising performance is observed when the accent features are added in training classification models and the misclassification rate drops about 12.57%. Although the accent features may not be sufficient for classification of DAs, it is shown that the accent features can improve the performance of DAs classification to a great extent.
机译:对话动作(DA)分类是计算机理解自然语言对话的关键步骤。已建议使用一些韵律特征来改善DA分类的性能。但是,大多数韵律特征是基于音高变化的。在当前的工作中,我们提出了一些新的属性,用于根据重音特征对对话行为(DA)进行自动分类。我们使用CASIA-CASSIL语料库测试解决15-DA分类任务的分类性能。在训练分类模型中添加重音特征后,可观察到有希望的性能,并且误分类率下降了约12.57%。尽管重音特征可能不足以对DA进行分类,但事实表明,重音特征可以在很大程度上改善DA的分类性能。

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