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Dynamic frequency scaling algorithms for improving the CPU's energy efficiency

机译:动态频率缩放算法可提高CPU的能效

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This paper approaches the problem of improving the service center server CPU's energy efficiency by executing dynamic frequency scaling actions and performing tradeoffs between CPU's computational performance and its power consumption. Two different algorithms are designed and implemented: an immune inspired algorithm and a fuzzy logic based algorithm. The immune inspired algorithm uses the human antigen as a model to represent the server power / performance state. Using a set of detectors the antigens are classified as self for optimal power consumption state or non-self for non-optimal power consumption state. For the non-self antigens a biologically inspired clonal selection approach is used to determine the actions that need to be executed to bring the server's CPU in an optimal power consumption state. The fuzzy logic based algorithm adaptively changes the processor performance states to the incoming workload. The algorithm also filters workload spikes because frequent p-states transition costs can outweigh the benefit of adaptation.
机译:本文通过执行动态频率调整操作并在CPU的计算性能与其功耗之间进行权衡,来解决提高服务中心服务器CPU的能源效率的问题。设计并实现了两种不同的算法:免疫启发式算法和基于模糊逻辑的算法。免疫启发式算法使用人类抗原作为模型来表示服务器电源/性能状态。使用一组检测器,将抗原分类为针对最佳功率消耗状态的自身抗原或针对非最佳功率消耗状态的非自身抗原。对于非自身抗原,使用生物学启发的克隆选择方法来确定将服务器的CPU置于最佳功耗状态所需执行的操作。基于模糊逻辑的算法将处理器性能状态自适应地更改为传入的工作负载。该算法还可以过滤工作量峰值,因为频繁的p状态转换成本可能超过自适应的好处。

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