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  • 标题:Joint Inference of Temporal Relations Identification with Markov Logic
  • 本地全文:下载
  • 作者:Katsumasa Yoshikawa ; Sebastian Riedel ; Masayuki Asahara
  • 期刊名称:人工知能学会論文誌
  • 印刷版ISSN:1346-0714
  • 电子版ISSN:1346-8030
  • 出版年度:2009
  • 卷号:24
  • 期号:6
  • 页码:521-530
  • DOI:10.1527/tjsai.24.521
  • 出版社:The Japanese Society for Artificial Intelligence
  • 摘要:Recent work on temporal relation identification has focused on three types of relations between events: temporal relations between an event and a time expression, between a pair of events and between an event and the document creation time. These types of relations have mostly been identified in isolation by event pairwise comparison. However, this approach neglects logical constraints between temporal relations of different types that we believe to be helpful. We therefore propose a Markov Logic model that jointly identifies relations of all three relation types simultaneously. By evaluating our model on the TempEval data we show that this approach leads to about 2% higher accuracy for all three types of relations ---and to the best results for the task when compared to those of other machine learning based systems.
  • 关键词:markov logic ; statistical relational learning ; temporal ordering ; joint inference
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