Fine-grained Conversational Decoding via Isotropic and Proximal Search

Type: Article

Publication Date: 2023-01-01

Citations: 0

DOI: https://doi.org/10.18653/v1/2023.emnlp-main.5

Abstract

General-purpose text decoding approaches are usually adopted for dialogue response generation. Although the quality of the generated responses can be improved with dialogue-specific encoding methods, conversational decoding methods are still under-explored. Inspired by SimDRC that a good dialogue feature space should follow the rules of locality and isotropy, we present a fine-grained conversational decoding method, termed isotropic and proximal search (IPS). Our method is designed to generate the semantic-concentrated response, while still maintaining informativeness and discrimination against the context. Experiments show that our approach significantly outperforms existing decoding strategies in the dialogue field across both automatic and human evaluation metrics. More in-depth analyses further confirm the effectiveness of our approach.

Locations

  • arXiv (Cornell University) - View - PDF
  • Proceedings of the 2021 Conference on Empirical Methods in Natural Language Processing - View - PDF

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