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L3C Model of High-Performance Computing Cluster for Scientific Applications

机译:L3C科学应用高性能计算集群模型

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High-performance computing clusters (HPCCs) are widely used for various scientific applications. In a typical scientific research environment, software applications need large but varying number of processing elements and processor cores. To maximize throughput of a computing cluster and optimum utilization of resources, one new model has been proposed. The proposed model visualizes the computing cluster as loosely coupled cluster of clusters (L3C). Execution time for scientific applications also varies in terms of lapsed time for execution and CPU time utilized. The process scheduling algorithm maintains a list of applications to be executed along with respective number of node/core required. Using the L3C model and scheduling algorithm, multiple applications are scheduled on the computing cluster for concurrent execution. Basis for proposing L3C model along with its details is discussed in the paper. Experimental results of performance evaluation of HPC clusters were published earlier by the authors and are referred at respective places. L3C model has certain inherent advantages which are also discussed in the paper.
机译:高性能计算群集(HPCC)广泛用于各种科学应用。在典型的科学研究环境中,软件应用需要大但不同数量的处理元件和处理器核心。为了最大限度地提高计算集群的吞吐量和资源的最佳利用,已经提出了一个新模型。所提出的模型可视化计算集群,作为松散耦合的簇簇(L3C)。科学应用程序的执行时间也在使用时间和使用CPU时间的停止时间方面变化。处理调度算法维护要执行的应用程序列表以及所需的各个节点/核心。使用L3C模型和调度算法,在计算集群上调度多个应用程序以进行并发执行。本文讨论了提出L3C模型的基础及其细节。作者提前发布HPC集群的绩效评估的实验结果,并在各个地方提到。 L3C模型具有一定的固有优点,也有本文讨论。

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