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NegMiner: An Automated Tool for Mining Negations from Electronic Narrative Medical Documents

机译:NegMiner:从电子叙事医学文档中挖掘否定词的自动化工具

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Mining negations from electronic narrative medical documents is one of the prominent data mining applications. Since medical documents are freely written, it is impossible to consider all possible sentence structures in advance and so frequent update of mining algorithms is inevitable. Unfortunately most of the proposed algorithms in the literature are too complex to be easily updated. Besides, most of them cannot be easily ported to other natural languages. The simple NegEx algorithm utilizes only two regular expressions and sets of terms to mine negations from narrative medical documents and so does not suffer from these shortcomings. Meanwhile, it has shown impressive mining results and so it is the most widely adopted algorithm. This paper proposes the Negation Mining (NegMiner) tool to address some of the shortcomings of the NegEx algorithm. The NegMiner exploits some basic syntactic and semantic information to deal with contiguous and multiple negations. It is a user-friendly tool that facilitates the task of knowledge base update and the task of document analysis through the use of PDF files. This also makes it able to deal with the existence of a medical finding several times in a single sentence. Experimental results have shown the superiority of the mining results of the NegMiner in comparison to the simulated NegEx algorithm.
机译:电子叙事医疗文档中的否定词挖掘是最重要的数据挖掘应用程序之一。由于医疗文件是自由编写的,因此不可能事先考虑所有可能的句子结构,因此不可避免地需要频繁更新挖掘算法。不幸的是,文献中提出的大多数算法过于复杂,无法轻松更新。此外,它们中的大多数不能轻易移植到其他自然语言。简单的NegEx算法仅利用两个正则表达式和术语集来挖掘叙述性医疗文档中的否定词,因此不会遭受这些缺点的困扰。同时,它显示出令人印象深刻的挖掘结果,因此它是最广泛采用的算法。本文提出了一种否定挖掘(NegMiner)工具,以解决NegEx算法的一些缺点。 NegMiner利用一些基本的句法和语义信息来处理连续和多重否定。它是一种用户友好的工具,可通过使用PDF文件来促进知识库更新任务和文档分析任务。这也使得它能够在一个句子中多次处理医学发现的存在。实验结果表明,与模拟的NegEx算法相比,NegMiner的挖掘结果具有优越性。

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