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      Text-mining solutions for biomedical research: enabling integrative biology

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          Abstract

          In response to the unbridled growth of information in literature and biomedical databases, researchers require efficient means of handling and extracting information. As well as providing background information for research, scientific publications can be processed to transform textual information into database content or complex networks and can be integrated with existing knowledge resources to suggest novel hypotheses. Information extraction and text data analysis can be particularly relevant and helpful in genetics and biomedical research, in which up-to-date information about complex processes involving genes, proteins and phenotypes is crucial. Here we explore the latest advancements in automated literature analysis and its contribution to innovative research approaches.

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          Author and article information

          Journal
          Nature Reviews Genetics
          Nat Rev Genet
          Springer Science and Business Media LLC
          1471-0056
          1471-0064
          December 2012
          November 14 2012
          December 2012
          : 13
          : 12
          : 829-839
          Article
          10.1038/nrg3337
          23150036
          91b54577-0f86-4fca-a42b-7e254b9c3929
          © 2012

          http://www.springer.com/tdm

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