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Deriving Power Models for Architecture-Level Energy Efficiency Analyses

机译:推导功率模型进行建筑级能源效率分析

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In early design phases and during software evolution, design-time energy efficiency analyses enable software architects to reason on the effect of design decisions on energy efficiency. Energy efficiency analyses rely on accurate power models to estimate power consumption. Deriving power models that are both accurate and usable for design time predictions requires extensive measurements and manual analysis. Existing approaches that aim to automate the extraction of power models focus on the construction of models for runtime estimation of power consumption. Power models constructed by these approaches do not allow users to identify the central set of system metrics that impact energy efficiency prediction accuracy. The identification of these central metrics is important for design time analyses, as an accurate prediction of each metric incurs modeling effort. We propose a methodology for the automated construction of multi-metric power models using systematic experimentation. Our approach enables the automated training and selection of power models for the design time prediction of power consumption. We validate our approach by evaluating the prediction accuracy of derived power models for a set of enterprise and data-intensive application benchmarks.
机译:在早期设计阶段和软件演化期间,设计时间能效分析能够使软件架构能够推理设计决策对能效的影响。能效分析依靠准确的电力模型来估算功耗。导出既准确且可用于设计时间预测的电源模型需要进行广泛的测量和手动分析。现有方法,旨在自动化电力模型的提取,专注于建设功耗运行时估计模型。这些方法构造的电源模型不允许用户识别影响能量效率预测精度的中央系统度量集。这些中央度量标准的识别对于设计时间分析很重要,作为对每个度量突出的准确预测建模努力。我们提出了一种利用系统实验自动构建多度量电力模型的方法。我们的方法使自动培训和选择功率模型进行功耗的设计时间预测。我们通过评估派生电力模型的预测准确性来验证我们的一组企业和数据密集型应用基准。

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