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A Scheduling Strategy for Global Scientific Grids Minimizing Simultaneously Time and Energy Consumption

机译:全球科学网格的调度策略同时最小化时间和能耗

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Grid computing has consolidated itself as a solution able of integrating, on a global scale, heterogeneous resources distributed geographically. This fact has contributed significantly to increase the IT infrastructure. However, all this computer power results in a lot of energy consumption, raising concerns not only with respect to economic aspects, but also regarding environmental impacts. Current data shows that the information technology and communication industry has been responsible for 2% of the carbon dioxide global emission, equivalent to the entire aviation industry. This paper proposes a biobjective strategy for resource allocation on global scientific grids, considering both energy consumption and execution times. An algorithm is presented which generates the minimal complete set of Pareto-optimal solutions in polynomial time. Computation experience is reported for three distinct scenarios.
机译:网格计算已将本身巩固为能够在地理上分布的全面规模集成的解决方案。这一事实有助于增加IT基础设施。然而,所有这一切电脑电力都会导致大量的能耗,不仅提高了经济方面的担忧,而且还对环境影响提出了担忧。目前的数据显示,信息技术和通信业一直负责2%的二氧化碳全球排放,相当于整个航空业。本文提出了对全球科学网格的资源分配的生物回物策略,考虑到能源消耗和执行时间。提出了一种算法,它在多项式时间中产生最小的完整帕累托最优解。报告了三种不同情景的计算体验。

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