Dense Paraphrasing for Textual Enrichment

October 20, 2022 ยท Declared Dead ยท ๐Ÿ› International Conference on Computational Semantics

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Authors Jingxuan Tu, Kyeongmin Rim, Eben Holderness, James Pustejovsky arXiv ID 2210.11563 Category cs.CL: Computation & Language Cross-listed cs.AI Citations 6 Venue International Conference on Computational Semantics Last Checked 5 months ago
Abstract
Understanding inferences and answering questions from text requires more than merely recovering surface arguments, adjuncts, or strings associated with the query terms. As humans, we interpret sentences as contextualized components of a narrative or discourse, by both filling in missing information, and reasoning about event consequences. In this paper, we define the process of rewriting a textual expression (lexeme or phrase) such that it reduces ambiguity while also making explicit the underlying semantics that is not (necessarily) expressed in the economy of sentence structure as Dense Paraphrasing (DP). We build the first complete DP dataset, provide the scope and design of the annotation task, and present results demonstrating how this DP process can enrich a source text to improve inferencing and QA task performance. The data and the source code will be publicly available.
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