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Can Knowledge Graphs Simplify Text? (2308.06975v3)

Published 14 Aug 2023 in cs.CL

Abstract: Knowledge Graph (KG)-to-Text Generation has seen recent improvements in generating fluent and informative sentences which describe a given KG. As KGs are widespread across multiple domains and contain important entity-relation information, and as text simplification aims to reduce the complexity of a text while preserving the meaning of the original text, we propose KGSimple, a novel approach to unsupervised text simplification which infuses KG-established techniques in order to construct a simplified KG path and generate a concise text which preserves the original input's meaning. Through an iterative and sampling KG-first approach, our model is capable of simplifying text when starting from a KG by learning to keep important information while harnessing KG-to-text generation to output fluent and descriptive sentences. We evaluate various settings of the KGSimple model on currently-available KG-to-text datasets, demonstrating its effectiveness compared to unsupervised text simplification models which start with a given complex text. Our code is available on GitHub.

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Authors (5)
  1. Anthony Colas (11 papers)
  2. Haodi Ma (8 papers)
  3. Xuanli He (43 papers)
  4. Yang Bai (204 papers)
  5. Daisy Zhe Wang (31 papers)
Citations (3)