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Towards a Progression-Aware Autonomous Dialogue Agent (2205.03692v2)

Published 7 May 2022 in cs.CL and cs.AI

Abstract: Recent advances in large-scale LLMing and generation have enabled the creation of dialogue agents that exhibit human-like responses in a wide range of conversational scenarios spanning a diverse set of tasks, from general chit-chat to focused goal-oriented discourse. While these agents excel at generating high-quality responses that are relevant to prior context, they suffer from a lack of awareness of the overall direction in which the conversation is headed, and the likelihood of task success inherent therein. Thus, we propose a framework in which dialogue agents can evaluate the progression of a conversation toward or away from desired outcomes, and use this signal to inform planning for subsequent responses. Our framework is composed of three key elements: (1) the notion of a "global" dialogue state (GDS) space, (2) a task-specific progression function (PF) computed in terms of a conversation's trajectory through this space, and (3) a planning mechanism based on dialogue rollouts by which an agent may use progression signals to select its next response.

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Authors (7)
  1. Abraham Sanders (4 papers)
  2. Tomek Strzalkowski (10 papers)
  3. Mei Si (12 papers)
  4. Albert Chang (1 paper)
  5. Deepanshu Dey (1 paper)
  6. Jonas Braasch (1 paper)
  7. Dakuo Wang (87 papers)
Citations (8)