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Applications of Grid Computing in Genetics and Proteomics

机译:网格计算在遗传学和蛋白质组学中的应用

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The potential for Grid technologies in applied bioinformatics is largely unexplored. We have developed a model for solving computationally demanding bioinformatics tasks in distributed Grid environments, designed to ease the usability for scientists unfamiliar with Grid computing. With a script-based implementation that uses a strategy of temporary installations of databases and existing executables on remote nodes at submission, we propose a generic solution that do not rely on predefined Grid runtime environments and that can easily be adapted to other bioinformatics tasks suitable for parallelization. This implementation has been successfully applied to whole proteome sequence similarity analyses and to genome-wide genotype simulations, where computation time was reduced from years to weeks. We conclude that computational Grid technology is a useful resource for solving high compute tasks in genetics and proteomics using existing algorithms.
机译:应用生物信息学中网格技术的潜力在很大程度上是未开发的。我们开发了一种解决分布式电网环境中计算要求苛刻的生物信息学任务的模型,旨在缓解与网格计计算的科学家不熟悉的可用性。通过基于脚本的实现,它使用临时安装策略和在提交时的远程节点上的现有可执行文件策略,我们提出了一个不依赖于预定义网格运行时环境的通用解决方案,并且可以轻松适应适用于其他生物信息学的任务并行化。该实施已成功应用于全蛋白质组序列相似性分析和基因组基因型模拟,其中计算时间从年到几周减少。我们得出结论,计算网格技术是使用现有算法解决遗传和蛋白质组学中的高计算任务的有用资源。

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