GAC : Gene Associations with Clinical , a web based

نویسندگان

  • Shengjie Yang
  • Matthew N. McCall
چکیده

We present GAC, a shiny R based tool for interactive visualization of clinical associations based on high-dimensional data. The tool provides a web-based suite to perform supervised principal component analysis (SuperPC), an approach that uses both high-dimensional data, such as gene expression, combined with clinical data to infer clinical associations. We extended the approach to address binary outcomes, in addition to continuous and time-to-event data in our package, thereby increasing the use and flexibility of SuperPC. Additionally, the tool provides an interactive visualization for summarizing results based on a forest plot for both binary and time-to-event data. In summary, the GAC suite of tools provide a one stop shop for conducting statistical analysis to identify and visualize the association between a clinical outcome of interest and high-dimensional data types, such as genomic data. Our GAC package has been implemented in R and is available via . The developmental repository is http://shinygispa.winship.emory.edu/GAC/ available at . https://github.com/manalirupji/GAC This article is included in the gateway. RPackage 1 1

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تاریخ انتشار 2018