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Empowering Language Models with Knowledge Graph Reasoning for Question Answering (2211.08380v1)

Published 15 Nov 2022 in cs.CL and cs.AI

Abstract: Answering open-domain questions requires world knowledge about in-context entities. As pre-trained LLMs (LMs) lack the power to store all required knowledge, external knowledge sources, such as knowledge graphs, are often used to augment LMs. In this work, we propose knOwledge REasOning empowered LLM (OREO-LM), which consists of a novel Knowledge Interaction Layer that can be flexibly plugged into existing Transformer-based LMs to interact with a differentiable Knowledge Graph Reasoning module collaboratively. In this way, LM guides KG to walk towards the desired answer, while the retrieved knowledge improves LM. By adopting OREO-LM to RoBERTa and T5, we show significant performance gain, achieving state-of-art results in the Closed-Book setting. The performance enhancement is mainly from the KG reasoning's capacity to infer missing relational facts. In addition, OREO-LM provides reasoning paths as rationales to interpret the model's decision.

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Authors (8)
  1. Ziniu Hu (51 papers)
  2. Yichong Xu (42 papers)
  3. Wenhao Yu (139 papers)
  4. Shuohang Wang (69 papers)
  5. Ziyi Yang (77 papers)
  6. Chenguang Zhu (100 papers)
  7. Kai-Wei Chang (292 papers)
  8. Yizhou Sun (149 papers)
Citations (20)