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Looking for Confirmations: An Effective and Human-Like Visual Dialogue Strategy
Conference proceeding   Peer reviewed

Looking for Confirmations: An Effective and Human-Like Visual Dialogue Strategy

A Testoni and Raffaella Bernardi
EMNLP 2021 - 2021 Conference on Empirical Methods in Natural Language Processing, Proceedings, pp.9330-9338
Empirical Methods in Natural Language Processing (Virtual, Punta Cana, 07/11/2021–11/11/2026)
2021
Handle:
https://hdl.handle.net/10863/46777

Abstract

Generating goal-oriented questions in Visual Dialogue tasks is a challenging and longstanding problem. State-Of-The-Art systems are shown to generate questions that, although grammatically correct, often lack an effective strategy and sound unnatural to humans. Inspired by the cognitive literature on information search and cross-situational word learning, we design Confirm-it, a model based on a beam search re-ranking algorithm that guides an effective goal-oriented strategy by asking questions that confirm the model's conjecture about the referent. We take the GuessWhat?! game as a case-study. We show that dialogues generated by Confirm-it are more natural and effective than beam search decoding without re-ranking. © 2021 Association for Computational Linguistics
url
https://doi.org/10.18653/v1/2021.emnlp-main.736View

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