Detecting agreement in multi-party dialogue: evaluating speaker diarisation versus a procedural baseline to enhance user engagement

November 06, 2023 ยท Declared Dead ยท ๐Ÿ› arXiv.org

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Authors Angus Addlesee, Daniel Denley, Andy Edmondson, Nancie Gunson, Daniel Hernรกndez Garcia, Alexandre Kha, Oliver Lemon, James Ndubuisi, Neil O'Reilly, Lia Perochaud, Raphaรซl Valeri, Miebaka Worika arXiv ID 2311.03021 Category cs.CL: Computation & Language Citations 4 Venue arXiv.org Last Checked 5 months ago
Abstract
Conversational agents participating in multi-party interactions face significant challenges in dialogue state tracking, since the identity of the speaker adds significant contextual meaning. It is common to utilise diarisation models to identify the speaker. However, it is not clear if these are accurate enough to correctly identify specific conversational events such as agreement or disagreement during a real-time interaction. This study uses a cooperative quiz, where the conversational agent acts as quiz-show host, to determine whether diarisation or a frequency-and-proximity-based method is more accurate at determining agreement, and whether this translates to feelings of engagement from the players. Experimental results show that our procedural system was more engaging to players, and was more accurate at detecting agreement, reaching an average accuracy of 0.44 compared to 0.28 for the diarised system.
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