Lexico-Acoustic Neural-Based Models for Dialog Act ClassificationDownload PDFOpen Website

2018 (modified: 13 Dec 2021)ICASSP 2018Readers: Everyone
Abstract: Recent works have proposed neural models for dialog act classification in spoken dialogs. However, they have not explored the role and the usefulness of acoustic information. We propose a neural model that processes both lexical and acoustic features for classification. Our results on two benchmark datasets reveal that acoustic features are helpful in improving the overall accuracy. Finally, a deeper analysis shows that acoustic features are valuable in three cases: when a dialog act has sufficient data, when lexical information is limited and when strong lexical cues are not present.
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