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PubMiner: Machine Learning-Based Text Mining System for Biomedical Information Mining

机译:PubMiner:基于机器学习的生物医学信息挖掘文本挖掘系统

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PubMiner, an intelligent machine learning based text mining system for mining biological information from the literature is introduced. PubMiner utilize natural language processing and machine learning based data mining techniques for mining useful biological information such as protein-protein interaction from the massive literature data. The system recognizes biological terms such as gene, protein, and enzymes and extracts their interactions described in the document through natural language analysis. The extracted interactions are further analyzed with a set of features of each entity which were constructed from the related public databases to infer more interactions from the original interactions. An inferred interaction from the interaction analysis and native interaction are provided to the user with the link of literature sources. The evaluation of system performance proceeded with the protein interaction data of S.cerevisiae (bakers yeast) from MIPS and SGD.
机译:介绍了PubMiner,这是一种基于智能机器学习的文本挖掘系统,用于从文献中挖掘生物信息。 PubMiner利用自然语言处理和基于机器学习的数据挖掘技术来挖掘有用的生物学信息,例如来自大量文献数据的蛋白质-蛋白质相互作用。该系统识别生物术语,例如基因,蛋白质和酶,并通过自然语言分析提取文档中描述的它们之间的相互作用。使用从相关公共数据库构造的每个实体的一组功能对提取的交互进行进一步分析,以从原始交互中推断出更多交互。通过交互分析和本机交互推断出的交互将通过文献来源的链接提供给用户。系统性能的评估从MIPS和SGD中获得的酿酒酵母(面包酵母)的蛋白质相互作用数据进行。

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