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Dialogue-Based Relation Extraction (2004.08056v1)

Published 17 Apr 2020 in cs.CL

Abstract: We present the first human-annotated dialogue-based relation extraction (RE) dataset DialogRE, aiming to support the prediction of relation(s) between two arguments that appear in a dialogue. We further offer DialogRE as a platform for studying cross-sentence RE as most facts span multiple sentences. We argue that speaker-related information plays a critical role in the proposed task, based on an analysis of similarities and differences between dialogue-based and traditional RE tasks. Considering the timeliness of communication in a dialogue, we design a new metric to evaluate the performance of RE methods in a conversational setting and investigate the performance of several representative RE methods on DialogRE. Experimental results demonstrate that a speaker-aware extension on the best-performing model leads to gains in both the standard and conversational evaluation settings. DialogRE is available at https://dataset.org/dialogre/.

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Authors (4)
  1. Dian Yu (78 papers)
  2. Kai Sun (317 papers)
  3. Claire Cardie (74 papers)
  4. Dong Yu (329 papers)
Citations (123)

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