Automatic dialogue acts classification in Slovak dialogues

Matus Pleva, S. Ondáš, J. Juhár
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引用次数: 5

Abstract

Dialogue acts classification plays an important role in advanced dialogue management systems. They represent intention of the dialogue participant in the particular part of the dialogue interaction. Dialogue act classification lies in the classification of the spoken utterances according to their discourse function. It relies mainly on the classical machine learning techniques similar as in case of natural language processing (NLP) tasks. The HMM-based approach was applied to perform DA classification of utterances in Slovak language. Episodes of the Slovak TV talk show were used for creating of dialogue corpus with DA labels. New simplified annotation schema was designed and used for labeling the corpus with 12 DA classes. Bigram models of DA classes and dialogue grammar were trained on training part of the corpus. Decoding of testing utterances was done by comparing probabilities of occurrence and perplexity over trained bigrams. Obtained results are comparable with similar techniques and data sets.
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斯洛伐克语对话中的自动对话行为分类
对话行为分类在高级对话管理系统中起着重要的作用。它们代表了对话参与者在对话互动的特定部分中的意图。对话行为分类就是根据话语功能对话语进行分类。它主要依赖于经典的机器学习技术,类似于自然语言处理(NLP)任务。采用基于hmm的方法对斯洛伐克语的话语进行数据分析分类。使用斯洛伐克电视谈话节目的片段来创建带有DA标签的对话语料库。设计了新的简化标注模式,用于标注12个DA类的语料库。在语料库的训练部分对数据处理类和对话语法的双元图模型进行训练。测试话语的解码是通过比较训练好的双语义的出现概率和困惑度来完成的。所得结果与类似的技术和数据集具有可比性。
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