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Improving Query-Focused Meeting Summarization with Query-Relevant Knowledge (2309.02105v1)

Published 5 Sep 2023 in cs.CL and cs.AI

Abstract: Query-Focused Meeting Summarization (QFMS) aims to generate a summary of a given meeting transcript conditioned upon a query. The main challenges for QFMS are the long input text length and sparse query-relevant information in the meeting transcript. In this paper, we propose a knowledge-enhanced two-stage framework called Knowledge-Aware Summarizer (KAS) to tackle the challenges. In the first stage, we introduce knowledge-aware scores to improve the query-relevant segment extraction. In the second stage, we incorporate query-relevant knowledge in the summary generation. Experimental results on the QMSum dataset show that our approach achieves state-of-the-art performance. Further analysis proves the competency of our methods in generating relevant and faithful summaries.

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Authors (3)
  1. Tiezheng Yu (29 papers)
  2. Ziwei Ji (42 papers)
  3. Pascale Fung (150 papers)
Citations (1)