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DialogUSR: Complex Dialogue Utterance Splitting and Reformulation for Multiple Intent Detection (2210.11279v1)

Published 20 Oct 2022 in cs.CL and cs.AI

Abstract: While interacting with chatbots, users may elicit multiple intents in a single dialogue utterance. Instead of training a dedicated multi-intent detection model, we propose DialogUSR, a dialogue utterance splitting and reformulation task that first splits multi-intent user query into several single-intent sub-queries and then recovers all the coreferred and omitted information in the sub-queries. DialogUSR can serve as a plug-in and domain-agnostic module that empowers the multi-intent detection for the deployed chatbots with minimal efforts. We collect a high-quality naturally occurring dataset that covers 23 domains with a multi-step crowd-souring procedure. To benchmark the proposed dataset, we propose multiple action-based generative models that involve end-to-end and two-stage training, and conduct in-depth analyses on the pros and cons of the proposed baselines.

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Authors (9)
  1. Haoran Meng (6 papers)
  2. Zheng Xin (1 paper)
  3. Tianyu Liu (177 papers)
  4. Zizhen Wang (5 papers)
  5. He Feng (9 papers)
  6. Binghuai Lin (20 papers)
  7. Xuemin Zhao (8 papers)
  8. Yunbo Cao (43 papers)
  9. Zhifang Sui (89 papers)
Citations (5)

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