Papers with context-sensitive clarification strategies

1 papers
Combining Cognitive Modeling and Reinforcement Learning for Clarification in Dialogue (2020.coling-main)

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Challenge: In many domains, dialogue systems need to work collaboratively with users to reconstruct meaning . this requires a system that can give targeted, effective feedback about the system’s understanding .
Approach: They propose a system that collaborates on reference tasks that distinguish arbitrarily varying color patches from similar distractors and use crowd workers to test their approach.
Outcome: The proposed system can distinguish varying color patches from distractors and elicit correct answers that the system understands.

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