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Toward better keywords extraction

机译:走向更好的关键词提取

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摘要

Automatic keyword extraction is the task to identify a small set of keywords from a given document that can describe the meaning of the document. It plays an important role in information retrieval. In this paper, a clustering-based approach to do this task is proposed. And the impacts of keyword length, the window size of centroid on the performance of AKE system are discussed. Then by introducing keyword length constraint and extending the number of centroid of every cluster, the performance of our AKE system is improved by 7.5% in F-score.
机译:自动关键字提取是从给定文档中识别一小组关键字的任务,该文件可以描述文档的含义。它在信息检索中发挥着重要作用。在本文中,提出了一种基于聚类的方法来执行此任务。和关键词长度的影响,讨论了质心的窗口大小对AKE系统的性能进行了质心。然后通过介绍关键字长度约束并扩展每个集群的质心的数量,我们的AKE系统的性能提高了F分数的7.5%。

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