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iHAT: interactive Hierarchical Aggregation Table for Genetic Association Data

机译:iHAT:遗传关联数据的交互式层次聚合表

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摘要

In the search for single-nucleotide polymorphisms which influence the observable phenotype, genome wide association studies have become an important technique for the identification of associations between genotype and phenotype of a diverse set of sequence-based data. We present a methodology for the visual assessment of single-nucleotide polymorphisms using interactive hierarchical aggregation techniques combined with methods known from traditional sequence browsers and cluster heatmaps. Our tool, the interactive Hierarchical Aggregation Table (iHAT), facilitates the visualization of multiple sequence alignments, associated metadata, and hierarchical clusterings. Different color maps and aggregation strategies as well as filtering options support the user in finding correlations between sequences and metadata. Similar to other visualizations such as parallel coordinates or heatmaps, iHAT relies on the human pattern-recognition ability for spotting patterns that might indicate correlation or anticorrelation. We demonstrate iHAT using artificial and real-world datasets for DNA and protein association studies as well as expression Quantitative Trait Locus data.
机译:在寻找影响可观察表型的单核苷酸多态性时,全基因组关联研究已成为一种重要技术,用于鉴定各种基于序列的数据的基因型和表型之间的关联。我们提出了一种使用交互式分层聚合技术与传统序列浏览器和聚类热图已知方法相结合的单核苷酸多态性视觉评估方法。我们的工具,交互式的层次聚合表(iHAT),有助于可视化多个序列比对,关联的元数据和层次聚类。不同的颜色图和聚合策略以及过滤选项可支持用户查找序列与元数据之间的相关性。类似于平行坐标或热图之类的其他可视化,iHAT依靠人类模式识别能力来发现可能指示相关或反相关的模式。我们使用人工和现实世界的数据集进行iHAT演示,以进行DNA和蛋白质关联研究以及表达定量性状基因座数据。

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