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Scribl: an HTML5 Canvas-based graphics library for visualizing genomic data over the web

机译:Scribl:一个基于HTML5 Canvas的图形库,用于通过Web可视化基因组数据

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Motivation: High-throughput biological research requires simultaneous visualization as well as analysis of genomic data, e. g. read alignments, variant calls and genomic annotations. Traditionally, such integrative analysis required desktop applications operating on locally stored data. Many current terabyte-size datasets generated by large public consortia projects, however, are already only feasibly stored at specialist genome analysis centers. As even small laboratories can afford very large datasets, local storage and analysis are becoming increasingly limiting, and it is likely that most such datasets will soon be stored remotely, e. g. in the cloud. These developments will require web-based tools that enable users to access, analyze and view vast remotely stored data with a level of sophistication and interactivity that approximates desktop applications. As rapidly dropping cost enables researchers to collect data intended to answer questions in very specialized contexts, developers must also provide software libraries that empower users to implement customized data analyses and data views for their particular application. Such specialized, yet lightweight, applications would empower scientists to better answer specific biological questions than possible with general-purpose genome browsers currently available. Results: Using recent advances in core web technologies (HTML5), we developed Scribl, a flexible genomic visualization library specifically targeting coordinate-based data such as genomic features, DNA sequence and genetic variants. Scribl simplifies the development of sophisticated web-based graphical tools that approach the dynamism and interactivity of desktop applications.
机译:动机:高通量生物学研究需要同时进行可视化以及对基因组数据的分析,例如G。读取比对,变异调用和基因组注释。传统上,这种集成分析要求桌面应用程序在本地存储的数据上运行。但是,由大型公共财团项目生成的许多当前的兆兆字节大小的数据集仅已可行地存储在专业的基因组分析中心。由于即使是小型实验室也可以负担非常大的数据集,因此本地存储和分析正变得越来越受限制,而且大多数此类数据集可能很快会被远程存储,例如。 G。在云中。这些发展将需要基于Web的工具,使用户能够以接近桌面应用程序的复杂程度和交互性来访问,分析和查看大量的远程存储数据。由于成本的快速下降使研究人员能够在非常特殊的环境中收集旨在回答问题的数据,因此开发人员还必须提供软件库,使用户能够针对其特定应用程序实施自定义的数据分析和数据视图。这种专门的但轻巧的应用程序将使科学家们能够比目前可用的通用基因组浏览器更好地回答特定的生物学问题。结果:利用核心网络技术(HTML5)的最新进展,我们开发了Scribl,这是一种灵活的基因组可视化库,专门针对基于坐标的数据,例如基因组特征,DNA序列和遗传变异。 Scribl简化了复杂的基于Web的图形工具的开发,该工具可实现桌面应用程序的动态性和交互性。

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