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Hyper-CL: Conditioning Sentence Representations with Hypernetworks

Authors
Yoo, Young HyunCha, JiiKim, ChanghyeonKim, Taeuk
Issue Date
Aug-2024
Citation
Association for Computational Linguistics (ACL). Annual Meeting Conference Proceedings, v.1, pp 700 - 711
Pages
12
Indexed
SCOPUS
Journal Title
Association for Computational Linguistics (ACL). Annual Meeting Conference Proceedings
Volume
1
Start Page
700
End Page
711
URI
https://scholarworks.bwise.kr/hanyang/handle/2021.sw.hanyang/195374
DOI
10.48550/arXiv.2403.09490
ISSN
0736-587X
Abstract
While the introduction of contrastive learning frameworks in sentence representation learning has significantly contributed to advancements in the field, it still remains unclear whether state-of-the-art sentence embeddings can capture the fine-grained semantics of sentences, particularly when conditioned on specific perspectives. In this paper, we introduce Hyper-CL, an efficient methodology that integrates hypernetworks with contrastive learning to compute conditioned sentence representations. In our proposed approach, the hypernetwork is responsible for transforming pre-computed condition embeddings into corresponding projection layers. This enables the same sentence embeddings to be projected differently according to various conditions. Evaluation of two representative conditioning benchmarks, namely conditional semantic text similarity and knowledge graph completion, demonstrates that Hyper-CL is effective in flexibly conditioning sentence representations, showcasing its computational efficiency at the same time. We also provide a comprehensive analysis of the inner workings of our approach, leading to a better interpretation of its mechanisms. Our code is available at https://github.com/HYU-NLP/Hyper-CL.
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