Toward Implicit Reference in Dialog: A Survey of Methods and Data

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Abstract

Communicating efficiently in natural language requires that we often leave information implicit, especially in spontaneous speech. This frequently results in phenomena of incompleteness, such as omitted references, that pose challenges for language processing. In this survey paper, we review the state of the art in research regarding the automatic processing of such implicit references in dialog scenarios, discuss weaknesses with respect to inconsistencies in task definitions and terminologies, and outline directions for future work. Among others, these include a unification of existing tasks and evaluation metrics, addressing data scarcity, and taking into account model and annotator uncertainties.

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Vanderlyn, L., Anthonio, T., Ortega, D., Roth, M., & Vu, N. T. (2022). Toward Implicit Reference in Dialog: A Survey of Methods and Data. In Proceedings of the 2nd Conference of the Asia-Pacific Chapter of the Association for Computational Linguistics and the 12th International Joint Conference on Natural Language Processing: Long Paper, AACL-IJCNLP 2022 (Vol. 1, pp. 587–600). Association for Computational Linguistics (ACL). https://doi.org/10.18653/v1/2022.aacl-main.45

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