An Integrated Approach Using Conditional Random Fields for Named Entity Recognition and Person Property Extraction in Vietnamese Text

Hoang-Quynh Le, Mai-Vu Tran, Nhat-Nam Bui, N. Phan, Quang-Thuy Ha
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引用次数: 4

Abstract

Personal names are among one of the most frequently searched items in web search engines and a person entity is always associated with numerous properties. In this paper, we propose an integrated model to recognize person entity and extract relevant values of a pre-defined set of properties related to this person simultaneously for Vietnamese. We also design a rich feature set by using various kind of knowledge resources and a apply famous machine learning method CRFs to improve the results. The obtained results show that our method is suitable for Vietnamese with the average result is 84 % of precision, 82.56% of recall and 83.39 % of F-measure. Moreover, performance time is pretty good, and the results also show the effectiveness of our feature set.
基于条件随机场的越南语文本命名实体识别与人物属性提取集成方法
个人姓名是网络搜索引擎中最常搜索的条目之一,个人实体总是与许多属性相关联。在本文中,我们提出了一个集成模型来识别人实体,并同时提取与越南人相关的预定义属性集的相关值。我们还利用各种知识资源设计了丰富的特征集,并应用著名的机器学习方法CRFs来改进结果。结果表明,该方法适用于越南语,平均准确率为84%,召回率为82.56%,F-measure率为83.39%。此外,性能时间也相当不错,结果也表明了我们的特征集的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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