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Application and evaluation of automated methods to extract neuroanatomical connectivity statements from free text

机译:从自由文本中提取神经解剖学连接性语句的自动化方法的应用和评估

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Motivation: Automated annotation of neuroanatomical connectivity statements from the neuroscience literature would enable accessible and large-scale connectivity resources. Unfortunately, the connectivity findings are not formally encoded and occur as natural language text. This hinders aggregation, indexing, searching and integration of the reports. We annotated a set of 1377 abstracts for connectivity relations to facilitate automated extraction of connectivity relationships from neuroscience literature. We tested several baseline measures based on co-occurrence and lexical rules. We compare results from seven machine learning methods adapted from the protein interaction extraction domain that employ part-of-speech, dependency and syntax features.
机译:动机:来自神经科学文献的神经解剖学连接性声明的自动注释将启用可访问的大规模连接性资源。不幸的是,连接发现没有被正式编码,并且以自然语言文字出现。这阻碍了报告的汇总,索引编制,搜索和集成。我们为连接关系注释了一组1377个摘要,以促进从神经科学文献中自动提取连接关系。我们基于同现和词汇规则测试了几种基准量度。我们比较了七种机器学习方法的结果,这些方法采用了蛋白质相互作用提取域,该方法采用了词性,依赖性和语法特征。

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