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A neural prosody encoder for end-ro-end dialogue act classification

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arxiv 2205.05590 v1 pith:65A4F5MJ submitted 2022-05-11 cs.CL cs.SDeess.AS

classification cs.CLcs.SDeess.AS
keywords dialogueprosodicfeaturesneuralarchitectureclassificationimportanceabsolute
verification ladder T0 review T1 audit T2 compute T3 formal
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Dialogue act classification (DAC) is a critical task for spoken language understanding in dialogue systems. Prosodic features such as energy and pitch have been shown to be useful for DAC. Despite their importance, little research has explored neural approaches to integrate prosodic features into end-to-end (E2E) DAC models which infer dialogue acts directly from audio signals. In this work, we propose an E2E neural architecture that takes into account the need for characterizing prosodic phenomena co-occurring at different levels inside an utterance. A novel part of this architecture is a learnable gating mechanism that assesses the importance of prosodic features and selectively retains core information necessary for E2E DAC. Our proposed model improves DAC accuracy by 1.07% absolute across three publicly available benchmark datasets.

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Cited by 1 Pith paper

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  1. The Role of Prosody in Spoken Question Answering

    cs.CL 2025-02 conditional novelty 6.0 of 10

    On natural-speech spoken QA, prosodic-only models beat chance but trail lexical models, and lexical cues dominate whenever both are available.

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