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A Survey of Available Corpora for Building Data-Driven Dialogue Systems

Authors :
Serban, Iulian Vlad
Lowe, Ryan
Henderson, Peter
Charlin, Laurent
Pineau, Joelle
Publication Year :
2015
Publisher :
arXiv, 2015.

Abstract

During the past decade, several areas of speech and language understanding have witnessed substantial breakthroughs from the use of data-driven models. In the area of dialogue systems, the trend is less obvious, and most practical systems are still built through significant engineering and expert knowledge. Nevertheless, several recent results suggest that data-driven approaches are feasible and quite promising. To facilitate research in this area, we have carried out a wide survey of publicly available datasets suitable for data-driven learning of dialogue systems. We discuss important characteristics of these datasets, how they can be used to learn diverse dialogue strategies, and their other potential uses. We also examine methods for transfer learning between datasets and the use of external knowledge. Finally, we discuss appropriate choice of evaluation metrics for the learning objective.<br />Comment: 56 pages including references and appendix, 5 tables and 1 figure; Under review for the Dialogue & Discourse journal. Update: paper has been rewritten and now includes several new datasets

Details

Database :
OpenAIRE
Accession number :
edsair.doi.dedup.....9e2d44f3e3bf8567540d3743dcfcf26a
Full Text :
https://doi.org/10.48550/arxiv.1512.05742