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A Probabilistic Co-Bootstrapping Method for Entity Set Expansion

机译:实体集扩展的概率协同引导法

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Entity Set Expansion (ESE) aims at automatically acquiring instances of a specific target category. Unfortunately, traditional ESE methods usually have the expansion boundary problem and the semantic drift problem. To resolve the above two problems, this paper proposes a probabilistic Co-Bootstrapping method, which can accurately determine the expansion boundary using both the positive and the discriminant negative instances, and resolve the semantic drift problem by effectively maintaining and refining the expansion boundary during bootstrapping iterations. Experimental results show that our method can achieve a competitive performance.
机译:实体集扩展(ESE)旨在自动获取特定目标类别的实例。不幸的是,传统的ESE方法通常具有扩展边界问题和语义漂移问题。为了解决以上两个问题,本文提出了一种概率共引导方法,该方法可以使用正负实例和判别负实例来精确确定扩展边界,并通过在引导过程中有效地保持和完善扩展边界来解决语义漂移问题。迭代。实验结果表明,我们的方法可以达到竞争性能。

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