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GenAMap: Visualization strategies for structured association mapping

机译:Genamap:结构化关联映射的可视化策略

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Association mapping studies promise to link DNA mutations to gene expression data, possibly leading to innovative treatments for diseases. One challenge in large-scale association mapping studies is exploring the results of the computational analysis to find relevant and interesting associations. Although many association mapping studies find associations from a genome-wide collection of genomic data to hundreds or thousands of traits, current visualization software only allow these associations to be explored one trait at a time. The inability to explore the association of a genomic location to multiple traits hides the inherent interaction between traits in the analysis. Additionally, researchers must rely on collections of in-house scripts and multiple tools to perform an analysis, adding time and effort to find interesting associations. In this paper, we present a novel visual analytics system called GenAMap. GenAMap replaces the time-consuming analysis of large-scale association mapping studies with exploratory visualization tools that give geneticists an overview of the data and lead them to relevant information. We present the results of a preliminary evaluation that validated our basic approach.
机译:关联映射研究承诺将DNA突变链接到基因表达数据,可能导致疾病的创新治疗。大型关联映射研究中的一个挑战正在探索计算分析的结果,以找到相关和有趣的关联。虽然许多关联映射研究发现与数百或数千种基因组数据的基因组收集相关联的关联,但目前的可视化软件仅允许这些关联一次探索一个特征。无法探索基因组位置与多个性状的关联隐藏了分析中的特征之间的固有相互作用。此外,研究人员必须依赖于内部脚本和多个工具的集合来执行分析,增加时间和精力以找到有趣的关联。在本文中,我们提出了一种名为Genamap的新型视觉分析系统。 Genamap取代了大规模关联映射研究的耗时分析,探索性可视化工具,使遗传学家概述数据并将其引导到相关信息。我们展示了初步评估的结果,验证了我们的基本方法。

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