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LambdaKG: A Library for Pre-trained Language Model-Based Knowledge Graph Embeddings (2210.00305v3)

Published 1 Oct 2022 in cs.CL, cs.AI, cs.DB, cs.IR, and cs.LG

Abstract: Knowledge Graphs (KGs) often have two characteristics: heterogeneous graph structure and text-rich entity/relation information. Text-based KG embeddings can represent entities by encoding descriptions with pre-trained LLMs, but no open-sourced library is specifically designed for KGs with PLMs at present. In this paper, we present LambdaKG, a library for KGE that equips with many pre-trained LLMs (e.g., BERT, BART, T5, GPT-3), and supports various tasks (e.g., knowledge graph completion, question answering, recommendation, and knowledge probing). LambdaKG is publicly open-sourced at https://github.com/zjunlp/PromptKG/tree/main/lambdaKG, with a demo video at

and long-term maintenance.

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Authors (5)
  1. Xin Xie (81 papers)
  2. Zhoubo Li (6 papers)
  3. Xiaohan Wang (91 papers)
  4. Zekun Xi (10 papers)
  5. Ningyu Zhang (148 papers)
Citations (8)
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