管理基因组计划工作流程中的数据来源

Renato de Paula, M. Holanda, M. E. Walter, Sérgio Lifschitz
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引用次数: 3

摘要

在本文中,我们建议应用provo - dm模型来管理为支持基因组计划而设计的工作流的数据来源。这个溯源模型旨在存储工作流的每个执行的细节,包括原始和生成的数据、计算工具和版本、参数等等。通过这种方式,生物学家可以查看特定工作流执行的细节,比较不同执行之间生成的信息,并更有效地计划新的工作流。此外,我们还创建了一个来源模拟器,以方便在基因组计划中包含来源数据模型。为了验证我们的建议,我们讨论了一个RNA- seq项目的案例研究,该项目旨在鉴定、测量和比较高通量自动测序仪产生的肝脏和肾脏RNA样品中的RNA表达水平。
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Managing data provenance in genome project workflows
In this article, we propose the application of the PROV-DM model to manage data provenance for workflows designed to support genome projects. This provenance model aims at storing details of each execution of the workflow, which include raw and produced data, computational tools and versions, parameters, and so on. This way, biologists can review details of a particular workflow execution, compare information generated among different executions, and plan new ones more efficiently. In addition, we have created a provenance simulator to facilitate the inclusion of a provenance data model in genome projects. In order to validate our proposal, we discuss a case study of an RNA-Seq project that aims to identify, measure and compare RNA expression levels across liver and kidney RNA samples produced by high-throughput automatic sequencers.
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