云计算:在生物学研究中的应用及未来展望

K. Menon, K. Anala, Gokhale Trupti, Neeru Sood
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引用次数: 8

摘要

云计算可以同时访问10万多台计算机来处理、存储或共享信息,这扩大了科学和商业许多领域的可能性。亚马逊(Amazon)提供的EC2等云计算服务的按使用付费性质是,您只需为您使用的服务器、服务器或其中的一部分付费,这也使其在经济上具有吸引力。本文针对遗传学和生物技术领域的研究人员,他们希望了解云计算如何为他们的研究领域做出贡献。生物信息学工具在当今的生物学研究中被广泛使用。使用云技术可以更有效地利用这些工具,并可能以更节省成本和时间的方式加以利用。高通量基因组学导致大量数据无法被本地研究机构的计算机以其生成的速度处理。通过使用云计算来实时存储和处理数据,已经克服了这一瓶颈。图像分析、数据挖掘、蛋白质折叠和基因测序等大型数据集和应用程序也可以在使用云的设施之间共享,用于协作研究。这是一种比传输此类数据更简单的方法。云还提供了类似Apache的Hadoop和Google的MapReduce这样的并行计算应用程序(对于使BLAST这样的服务在更短的时间内更容易部署特别有用)。云计算具有多韧性、可扩展性、低成本、虚拟化、敏捷性和最终用户授权等特点,使得在更细的粒度上共享研究结果成为可能,同时在单个数据点的层面上共享科学调查。云技术可在生物多样性信息学和人类遗传变异和疾病研究等领域作出重大贡献。我们将讨论这些可能性、实现云技术在生物科学中应用潜力的挑战,以及为克服这些挑战所做的工作。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Cloud computing: Applications in biological research and future prospects
Cloud computing, providing access to more than a hundred thousand computers at a time to process, store or share information has stretched the horizon of possibilities in many areas of science and business. The pay as you use nature of cloud computing services such as EC2 provided by Amazon wherein you pay only for the servers, server or part thereof that you use also makes it economically attractive. This paper is targeted at researchers in the field of genetics and biotechnology who wish to understand how cloud computing can contribute to their area of research. Bio-informatics tools are extensively used in biological research today. These tools can be utilized more efficiently and in a possibly more cost and time effective manner using cloud technology. High-throughput genomics leads to reams of data that cannot be processed by local research facility computers at the speed it is generated. This bottleneck has been overcome by the use of cloud computing to store and to process data in real time. Large datasets and applications for image analysis, data mining, protein folding, and gene sequencing can also be shared for collaborative research between facilities using clouds. This is a simpler approach than transferring such data. Clouds also provide applications such as Apache's Hadoop and Google's MapReduce for parallel computing (particularly useful for making services such as BLAST easier to deploy in a shorter time). Cloud computing with characteristics like multi-tenacity, scalability, low cost, virtualization, agility and empowerment of end users has made it possible to share the results of studies at much finer granularity, along with sharing scientific investigations at the level of individual data points. Cloud technology can contribute significantly in areas such as biodiversity informatics and the study of human genetic variation and disease. We discuss these possibilities, the challenges in realizing the potential for application of cloud technology in biological sciences, and the work being done to overcome these challenges.
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