首页> 外文会议>IEEE Symposium on Biological Data Visualization 2011 >Visualizing virus population variability from next generation sequencing data
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Visualizing virus population variability from next generation sequencing data

机译:从下一代测序数据可视化病毒种群的变异性

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Advances in genomic sequencing techniques allow for larger scale generation and usage of sequence data. While these techniques afford new types of analysis, they also generate new concerns with regards to data quality and data scale. We present a tool designed to assist in the exploration of the genetic variability of the population of viruses at multiple time points and in multiple individuals, a task that necessitates considering large amounts of sequence data and the quality issues inherent in obtaining such data in a practical manner. Our design affords the examination of the amount of variability and mutation at each position in the genome for many populations of viruses. Our design contains novel visualization techniques that support this specific class of analysis while addressing the issues of data aggregation, confidence visualization, and interaction support that arise when making use of large amounts of sequence data with variable uncertainty. These techniques generalize to a wide class of visualization problems where confidence is not known a priori, and aggregation in multiple directions is necessary.
机译:基因组测序技术的进步允许大规模生成和使用序列数据。尽管这些技术提供了新的分析类型,但它们也引起了有关数据质量和数据规模的新问题。我们提出了一种工具,旨在协助探索多个时间点和多个个体中病毒种群的遗传变异性,该任务需要考虑大量序列数据以及在实际操作中获取此类数据所固有的质量问题。方式。我们的设计提供了许多病毒种群在基因组每个位置的变异性和突变量的检验。我们的设计包含新颖的可视化技术,可支持此类特定的分析,同时解决了在使用大量具有可变不确定性的序列数据时出现的数据聚合,置信度可视化和交互支持问题。这些技术普遍适用于一类可视化问题,在这些问题中先验性未知,因此有必要在多个方向进行汇总。

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