Dialogue State Tracking


Dialogue state tracking consists of determining at each turn of a dialogue the full representation of what the user wants at that point in the dialogue, which contains a goal constraint, a set of requested slots, and the user's dialogue act.

Collaborative Problem-Solving in an Optimization Game

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May 21, 2025
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Boosting Universal LLM Reward Design through the Heuristic Reward Observation Space Evolution

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Apr 10, 2025
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FocusedAD: Character-centric Movie Audio Description

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Apr 16, 2025
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Interpretable and Robust Dialogue State Tracking via Natural Language Summarization with LLMs

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Mar 11, 2025
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If an LLM Were a Character, Would It Know Its Own Story? Evaluating Lifelong Learning in LLMs

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Mar 30, 2025
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Learning LLM Preference over Intra-Dialogue Pairs: A Framework for Utterance-level Understandings

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Mar 07, 2025
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Enhancing LLM Reliability via Explicit Knowledge Boundary Modeling

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Mar 04, 2025
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PersuasiveToM: A Benchmark for Evaluating Machine Theory of Mind in Persuasive Dialogues

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Feb 28, 2025
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Towards Preventing Overreliance on Task-Oriented Conversational AI Through Accountability Modeling

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Jan 17, 2025
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Intent-driven In-context Learning for Few-shot Dialogue State Tracking

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Dec 04, 2024
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