A Study on Dialog Act Recognition using Character-Level Tokenization

May 18, 2018 ยท Declared Dead ยท ๐Ÿ› Artificial Intelligence: Methodology, Systems, Applications

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Authors Eugรฉnio Ribeiro, Ricardo Ribeiro, David Martins de Matos arXiv ID 1805.07231 Category cs.CL: Computation & Language Citations 8 Venue Artificial Intelligence: Methodology, Systems, Applications Last Checked 5 months ago
Abstract
Dialog act recognition is an important step for dialog systems since it reveals the intention behind the uttered words. Most approaches on the task use word-level tokenization. In contrast, this paper explores the use of character-level tokenization. This is relevant since there is information at the sub-word level that is related to the function of the words and, thus, their intention. We also explore the use of different context windows around each token, which are able to capture important elements, such as affixes. Furthermore, we assess the importance of punctuation and capitalization. We performed experiments on both the Switchboard Dialog Act Corpus and the DIHANA Corpus. In both cases, the experiments not only show that character-level tokenization leads to better performance than the typical word-level approaches, but also that both approaches are able to capture complementary information. Thus, the best results are achieved by combining tokenization at both levels.
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