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BioTextQuest(+): a knowledge integration platform for literature mining and concept discovery

机译:BioTextQuest(+):用于文献挖掘和概念发现的知识集成平台

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The iterative process of finding relevant information in biomedical literature and performing bioinformatics analyses might result in an endless loop for an inexperienced user, considering the exponential growth of scientific corpora and the plethora of tools designed to mine PubMed (R) and related biological databases. Herein, we describe BioTextQuest(+), a web-based interactive knowledge exploration platform with significant advances to its predecessor (BioTextQuest), aiming to bridge processes such as bioentity recognition, functional annotation, document clustering and data integration towards literature mining and concept discovery. BioTextQuest(+) enables PubMed and OMIM querying, retrieval of abstracts related to a targeted request and optimal detection of genes, proteins, molecular functions, pathways and biological processes within the retrieved documents. The front-end interface facilitates the browsing of document clustering per subject, the analysis of term co-occurrence, the generation of tag clouds containing highly represented terms per cluster and at-a-glance popup windows with information about relevant genes and proteins. Moreover, to support experimental research, BioTextQuest(+) addresses integration of its primary functionality with biological repositories and software tools able to deliver further bioinformatics services. The Google-like interface extends beyond simple use by offering a range of advanced parameterization for expert users. We demonstrate the functionality of BioTextQuest(+) through several exemplary research scenarios including author disambiguation, functional term enrichment, knowledge acquisition and concept discovery linking major human diseases, such as obesity and ageing.
机译:考虑到科学语料的指数增长以及为挖掘PubMed(R)和相关生物学数据库而设计的大量工具,在生物医学文献中查找相关信息并进行生物信息学分析的迭代过程可能会导致无经验用户的无休止循环。在此,我们介绍BioTextQuest(+),这是一个基于Web的交互式知识探索平台,其前身(BioTextQuest)取得了重大进展,旨在将诸如生物实体识别,功能注释,文档聚类和数据集成之类的过程与文献挖掘和概念发现联系起来。 BioTextQuest(+)支持PubMed和OMIM查询,与目标请求有关的摘要的检索以及对检索到的文档中的基因,蛋白质,分子功能,途径和生物学过程的最佳检测。前端界面可方便地浏览每个主题的文档聚类,术语共现的分析,每个聚类包含高代表性术语的标签云的生成以及带有有关基因和蛋白质信息的快速弹出窗口。此外,为了支持实验研究,BioTextQuest(+)解决了其主要功能与生物存储库和能够提供进一步生物信息服务的软件工具的集成问题。类似于Google的界面通过为专家用户提供一系列高级参数设置,扩展了其简单的使用范围。我们通过几种示例性研究场景来证明BioTextQuest(+)的功能,包括作者歧义消除,功能术语丰富,知识获取以及将主要人类疾病(例如肥胖和衰老)联系起来的概念发现。

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