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Opportunities for grid computing in bio- and health-informatics

机译:生物和健康信息学中网格计算的机会

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Summary form only given. Over the past few years the popularity of the Internet has been growing by leaps and bounds. However, there comes a time in the life of a technology, as it matures, where questions about its future need to be answered. The Internet is no exception to this case. Often called the "next big thing" in global Internet technology, grid computing is viewed as one of the top candidates that can shape the future of the Internet. Grid computing takes collective advantage of the vast improvements in microprocessor speeds, optical communications, raw storage capacity, World Wide Web and the Internet that have occurred over the last five years. Grid technology leverages existing resources and delays the need to purchase new infrastructure. With demand for computer power in industries like the life sciences and health informatics almost unlimited. Grid's ability to deliver greater power at less cost gives the technology tremendous potential. Ultimately the grid must be evaluated in terms of the applications, business value, and scientific results that it delivers, not its architecture. Biology provides some of the most important, as well as most complex, scientific challenges of our times. These problems include understanding the human genome, discovering the structure and functions of the proteins that the genes encode, and using this information efficiently for drug design. Most of these problems are extremely intensive from a computational perspective. One of the principal design goals for the grid framework is the effective logical separation of the complexities of programming a massively parallel machine from the complexities of bioinformatics computations through the definition of appropriate interfaces. Encapsulation of the semantics of the bioinformatics computations methodologies means that the application can track the evolution of the machine architecture and explorations of various parallel decomposition schemes can take place with minimal intervention from the domain experts or the end users. For example, understanding the physical basis of protein function is a central objective of molecular biology. Proteins function through internal motion and interaction with their environment. An understanding of protein motion at the atomic level has been pursued since the earliest simulations of their dynamics. When simulations can connect to experimental results, the microscopic examinations of the different processes (via simulation) acquire more credibility and the simulation results can then help interpret the experimental data. Improvements in computational power and simulation methods facilitated by the grid framework could to lead to important progress in studies of protein structure, thermodynamics, and kinetics. This talk overviews the state of play and show how the grid can change the competitive landscape and, thus, become a potential "disruptive" technology.
机译:仅提供摘要表格。在过去的几年中,Internet的普及得到了突飞猛进的发展。但是,随着技术的成熟,在它的生命中会出现一个时代,需要回答有关其未来的问题。互联网也不例外。网格计算通常被称为全球Internet技术中的“下一件大事”,被视为可以塑造Internet未来的最佳人选之一。过去五年来,网格计算充分利用了微处理器速度,光通信,原始存储容量,万维网和互联网的巨大进步。网格技术可以利用现有资源并延迟购买新基础架构的需求。生命科学和健康信息学等行业对计算机功能的需求几乎是无限的。电网以更低的成本提供更大功率的能力为该技术带来了巨大的潜力。最终,必须根据网格所提供的应用程序,业务价值和科学成果(而不是其体系结构)来评估网格。生物学提出了当今时代最重要,最复杂的科学挑战。这些问题包括了解人类基因组,发现基因编码的蛋白质的结构和功能,以及将这些信息有效地用于药物设计。从计算的角度来看,这些问题大多数都是非常密集的。网格框架的主要设计目标之一是通过定义适当的接口,有效地将大型并行机的编程复杂性与生物信息学计算的复杂性进行逻辑上的分离。生物信息学计算方法语义的封装意味着该应用程序可以跟踪机器体系结构的演变,并且可以在领域专家或最终用户很少干预的情况下进行各种并行分解方案的探索。例如,了解蛋白质功能的物理基础是分子生物学的主要目标。蛋白质通过内部运动及其与环境的相互作用来发挥作用。自最早对其动力学进行模拟以来,就一直寻求对蛋白质运动的原子级理解。当模拟可以连接到实验结果时,对不同过程的微观检查(通过模拟)将获得更高的可信度,然后模拟结果可以帮助解释实验数据。网格框架促进了计算能力和模拟方法的改进,可以导致蛋白质结构,热力学和动力学研究的重要进展。本演讲概述了运行状况,并展示了网格如何改变竞争格局,从而成为潜在的“破坏性”技术。

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