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Leveraging Distributed Human Computation and Consensus Partition for Entity Coreference

机译:利用分布式人力计算和实体练习的共识分区

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Entity coreference is important to Linked Data integration. User involvement is considered as a valuable source of human knowledge that helps identify coreferent entities. However, the quality of user involvement is not always satisfying, which significantly diminishes the coreference accuracy. In this paper, we propose a new approach called coCoref, which leverages distributed human computation and consensus partition for entity coreference. Consensus partition is used to aggregate all distributed user-judged coreference results and resolve their disagreements. To alleviate user involvement, ensemble learning is performed on the consensus partition to automatically identify coreferent entities that users have not judged. We integrate coCoref into an online Linked Data browsing system, so that users can participate in entity coreference with their daily Web activities. Our empirical evaluation shows that coCoref largely improves the accuracy of user-judged coreference results, and reduces user involvement by automatically identifying a large number of coreferent entities.
机译:实体coreference对链接数据集成非常重要。用户参与被认为是有价值的人类知识来源,有助于识别科技实体。然而,用户参与的质量并不总是令人满意,这显着减少了刻度准确性。在本文中,我们提出了一种称为Cocoref的新方法,该方法利用了分布式人力计算和共识分区的实体练习。共识分区用于聚合所有分布式用户判断的Coreference结果并解决其分歧。为了减轻用户参与,在共识分区上执行集合学习,以自动识别用户未被判断的康斯特实体。我们将Cocoref集成到一个在线链接的数据浏览系统中,以便用户可以使用日常的Web活动参与实体练习。我们的经验评估表明,Cocoref在很大程度上提高了用户判断的辛芯参考结果的准确性,并通过自动识别大量的Coreferent实体来减少用户参与。

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