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CLIP also Understands Text: Prompting CLIP for Phrase Understanding (2210.05836v1)

Published 11 Oct 2022 in cs.CL

Abstract: Contrastive Language-Image Pretraining (CLIP) efficiently learns visual concepts by pre-training with natural language supervision. CLIP and its visual encoder have been explored on various vision and language tasks and achieve strong zero-shot or transfer learning performance. However, the application of its text encoder solely for text understanding has been less explored. In this paper, we find that the text encoder of CLIP actually demonstrates strong ability for phrase understanding, and can even significantly outperform popular LLMs such as BERT with a properly designed prompt. Extensive experiments validate the effectiveness of our method across different datasets and domains on entity clustering and entity set expansion tasks.

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Authors (6)
  1. An Yan (31 papers)
  2. Jiacheng Li (54 papers)
  3. Wanrong Zhu (30 papers)
  4. Yujie Lu (42 papers)
  5. William Yang Wang (254 papers)
  6. Julian McAuley (238 papers)
Citations (5)