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Towards Neural Speaker Modeling in Multi-Party Conversation: The Task, Dataset, and Models

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Abstract

Neural network-based dialog systems are attracting increasing attention in both academia and industry.Recently, researchers have begun to realize the importance of speaker modeling in neural dialog systems, but there lacks established tasks and datasets.In this paper, we propose speaker classification as a surrogate task for general speaker modeling, and collect massive data to facilitate research in this direction.We further investigate temporal-based and content-based models of speakers, and propose several hybrids of them.Experiments show that speaker classification is feasible, and that hybrid models outperform each single component.

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DOI
10.63317/3bau89hm3k8v
OpenAlex
W2963897404
Document type
conference-paper
Language
EN
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