Improving Dialogue Act Classification for Spontaneous Arabic Speech and Instant Messages at Utterance Level

May 30, 2018 ยท Declared Dead ยท ๐Ÿ› International Conference on Language Resources and Evaluation

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Authors AbdelRahim Elmadany, Sherif Abdou, Mervat Gheith arXiv ID 1806.00522 Category cs.CL: Computation & Language Citations 9 Venue International Conference on Language Resources and Evaluation Last Checked 5 months ago
Abstract
The ability to model and automatically detect dialogue act is an important step toward understanding spontaneous speech and Instant Messages. However, it has been difficult to infer a dialogue act from a surface utterance because it highly depends on the context of the utterance and speaker linguistic knowledge; especially in Arabic dialects. This paper proposes a statistical dialogue analysis model to recognize utterance's dialogue acts using a multi-classes hierarchical structure. The model can automatically acquire probabilistic discourse knowledge from a dialogue corpus were collected and annotated manually from multi-genre Egyptian call-centers. Extensive experiments were conducted using Support Vector Machines classifier to evaluate the system performance. The results attained in the term of average F-measure scores of 0.912; showed that the proposed approach has moderately improved F-measure by approximately 20%.
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