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首页> 外文期刊>Briefings in bioinformatics >The next generation of literature analysis: Integration of genomic analysis into text mining
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The next generation of literature analysis: Integration of genomic analysis into text mining

机译:下一代文献分析:将基因组分析整合到文本挖掘中

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Text-mining systems are indispensable tools to reduce the increasing flux of information in scientific literature to topics pertinent to a particular interest in focus. Most of the scientific literature is published as unstructured free text, complicating the development of data processing tools, which rely on structured information. To overcome the problems of free text analysis, structured, hand-curated information derived from literature is integrated in text-mining systems to improve precision and recall. In this paper several text-mining approaches are reviewed and the next step in development of text-mining systems, which is based on a concept of multiple lines of evidence, is described: results from literature analysis are combined with evidence from experiments and genome analysis to improve the accuracy of results and to generate additional knowledge beyond what is known solely from literature.
机译:文本挖掘系统是减少科学文献中越来越多的信息流向与关注焦点特别相关的主题的必不可少的工具。大多数科学文献以非结构化的自由文本形式发布,这使得依赖于结构化信息的数据处理工具的开发变得复杂。为了克服自由文本分析的问题,将源自文献的结构化,手工精选的信息集成到文本挖掘系统中,以提高准确性和召回率。本文回顾了几种文本挖掘方法,并描述了基于多证据概念的文本挖掘系统开发的下一步:将文献分析的结果与实验和基因组分析的证据相结合以提高结果的准确性,并产生超出仅从文献中得知的知识。

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