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Feature Engineering for Drug Name Recognition in Biomedical Texts: Feature Conjunction and Feature Selection

机译:生物医学文本中的药物名称识别功能工程:功能结合和功能选择

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Drug name recognition (DNR) is a critical step for drug information extraction. Machine learning-based methods have been widely used for DNR with various types of features such as part-of-speech, word shape, and dictionary feature. Features used in current machine learning-based methods are usually singleton features which may be due to explosive features and a large number of noisy features when singleton features are combined into conjunction features. However, singleton features that can only capture one linguistic characteristic of a word are not sufficient to describe the information for DNR when multiple characteristics should be considered. In this study, we explore feature conjunction and feature selection for DNR, which have never been reported. We intuitively select 8 types of singleton features and combine them into conjunction features in two ways. Then, Chi-square, mutual information, and information gain are used to mine effective features. Experimental results show that feature conjunction and feature selection can improve the performance of the DNR system with a moderate number of features and our DNR system significantly outperforms the best system in the DDIExtraction 2013 challenge.
机译:药物名称识别(DNR)是用于药物信息提取的关键步骤。基于机器学习的方法已广泛用于DNR,具有各种类型的特征,例如语音部分,单词形状和字典特征。基于机器学习的方法中使用的功能通常是单身特征,可能是由于爆炸功能和大量嘈杂的功能,当单例功能组合成结合功能时。但是,只能捕获单词的一个语言特征的单例特征不足以描述当应考虑多个特征时DNR的信息。在本研究中,我们探索了从未报告过的DNR的功能结合和功能选择。我们直观地选择了8种类型的单身特征,并以两种方式将它们与结合功能相结合。然后,Chi-Square,相互信息和信息增益用于挖掘有效功能。实验结果表明,功能结合和特征选择可以提高DNR系统的性能,具有中等数量的功能,我们的DNR系统显着优于DDiebTraction 2013挑战中的最佳系统。

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