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Adaptive automatic grid reconfiguration using workload phase identification

机译:使用工作负载阶段识别自动自动网格重新配置

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The purpose of this study is to develop an adaptive model of a very large scale data processing and storage environment. The target environment includes grid applications such as health-care and finance in which the data may be located primarily within the resources of a worldwide corporation. The approach is to use phase identification techniques that can detect over-utilized grid resources, and then to make dynamic decisions to reassign additional resources to that portion of the application processing. Two phase identification techniques are proposed, a variation technique and a real-time threshold-based technique. The techniques are validated with a simulation model and a case study using measured data from a production grid environment. The case study demonstrates that phase identification techniques can be used as the intelligent component of a reactive mechanism for a grid to adapt to changing environmental conditions by dynamic automatic reconfiguration. Results show that threshold based phase identifying techniques combined with dynamic resource allocation capabilities are effective in alleviating performance hot spots and improving response time in a large scale data grid.
机译:本研究的目的是开发一个非常大规模的数据处理和存储环境的自适应模型。目标环境包括网格应用,例如保健和金融,其中数据可以主要位于全球公司的资源范围内。该方法是使用阶段识别技术可以检测过度使用的网格资源,然后使动态决策重新分配给应用程序处理的该部分的额外资源。提出了两种相位识别技术,一种变化技术和基于实时阈值的技术。使用来自生产网格环境的测量数据进行仿真模型和案例研究验证了这些技术。案例研究表明,相位识别技术可以用作电网的反应机制的智能分量,以通过动态自动重新配置来适应环境条件的变化。结果表明,基于阈值的相位识别技术与动态资源分配能力相结合,可有效地缓解性能热点并在大规模数据网格中提高响应时间。

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