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Gaining Insights into Unrecognized User Utterances in Task-Oriented Dialog Systems (2204.05158v2)

Published 11 Apr 2022 in cs.CL

Abstract: The rapidly growing market demand for automatic dialogue agents capable of goal-oriented behavior has caused many tech-industry leaders to invest considerable efforts into task-oriented dialog systems. The success of these systems is highly dependent on the accuracy of their intent identification -- the process of deducing the goal or meaning of the user's request and mapping it to one of the known intents for further processing. Gaining insights into unrecognized utterances -- user requests the systems fail to attribute to a known intent -- is therefore a key process in continuous improvement of goal-oriented dialog systems. We present an end-to-end pipeline for processing unrecognized user utterances, deployed in a real-world, commercial task-oriented dialog system, including a specifically-tailored clustering algorithm, a novel approach to cluster representative extraction, and cluster naming. We evaluated the proposed components, demonstrating their benefits in the analysis of unrecognized user requests.

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Authors (6)
  1. Ella Rabinovich (27 papers)
  2. Matan Vetzler (6 papers)
  3. David Boaz (3 papers)
  4. Vineet Kumar (33 papers)
  5. Gaurav Pandey (51 papers)
  6. Ateret Anaby-Tavor (21 papers)
Citations (7)