On the Transferability of Visually Grounded PCFGs

Open Access
Authors
Publication date 2023
Host editors
  • H. Bouamor
  • J. Pino
  • K. Bali
Book title The 2023 Conference on Empirical Methods in Natural Language Processing : Findings of the Association for Computational Linguistics: EMNLP 2023
Book subtitle December 6-10, 2023
ISBN (electronic)
  • 9798891760615
Event 2023 Conference on Empirical Methods in Natural Language Processing
Pages (from-to) 7895-7910
Number of pages 16
Publisher Stroudsburg, PA: Association for Computational Linguistics
Organisations
  • Interfacultary Research - Institute for Logic, Language and Computation (ILLC)
Abstract

There has been a significant surge of interest in visually grounded grammar induction in recent times. While a variety of models have been developed for the task and have demonstrated impressive performance, they have not been evaluated on text domains that are different from the training domain, so it is unclear if the improvements brought by visual groundings are transferable. Our study aims to fill this gap and assess the degree of transferability. We start by extending vc-PCFG (short for Visually-grounded Compound PCFG (Zhao and Titov, 2020)) in such a way that it can transfer across text domains. We consider a zero-shot transfer learning setting where a model is trained on the source domain and is directly applied to target domains, without any further training. Our experimental results suggest that: the benefits from using visual groundings transfer to text in a domain similar to the training domain but fail to transfer to remote domains. Further, we conduct data and result analysis; we find that the lexicon overlap between the source domain and the target domain is the most important factor in the transferability of vc-PCFG.

Document type Conference contribution
Language English
Published at https://doi.org/10.18653/v1/2023.findings-emnlp.530
Other links https://www.scopus.com/pages/publications/85183305484
Downloads
2023.findings-emnlp.530 (Final published version)
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