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An Adaptive Energy-Conserving Strategy for Parallel Disk Systems

机译:并行磁盘系统的自适应节能策略

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In the past decade parallel disk systems have been highly scalable and able to alleviate the problem of disk I/O bottleneck, thereby being widely used to support a wide range of data-intensive applications. Optimizing energy consumption in parallel disk systems has strong impacts on the cost of backup power-generation and cooling equipment, because a significant fraction of the operation cost of data centres is due to energy consumption and cooling. Although a variety of parallel disk systems were developed to achieve high performance and energy efficiency, most existing parallel disk systems lack an adaptive way to conserve energy in dynamically changing workload conditions. To solve this problem, we develop an adaptive energy-conserving algorithm, or DCAPS, for parallel disk systems using the dynamic voltage scaling technique that dynamically choose the most appropriate voltage supplies for parallel disks while guaranteeing specified performance (i.e., desired response times) for disk requests. We conduct extensive experiments to quantitatively evaluate the performance of the proposed energy-conserving strategy. Experimental results consistently show that DCAPS significantly reduces energy consumption of parallel disk systems in a dynamic environment over the same disk systems without using the DCAPS strategy.
机译:在过去的十年中,并行磁盘系统具有高度的可扩展性,并且能够缓解磁盘I / O瓶颈的问题,因此被广泛用于支持各种数据密集型应用程序。优化并行磁盘系统中的能耗对备用发电和冷却设备的成本有很大影响,因为数据中心的运营成本中很大一部分是由于能耗和冷却造成的。尽管开发了多种并行磁盘系统以实现高性能和能源效率,但是大多数现有的并行磁盘系统都缺乏在动态变化的工作负载条件下节省能源的自适应方法。为解决此问题,我们使用动态电压缩放技术为并行磁盘系统开发了一种自适应节能算法或DCAPS,该技术动态地为并行磁盘选择了最合适的电源,同时保证了特定的性能(即所需的响应时间)。磁盘请求。我们进行了广泛的实验,以定量评估所提出的节能策略的性能。实验结果一致表明,在不使用DCAPS策略的情况下,DCAPS可以大大降低动态环境中并行磁盘系统在相同磁盘系统上的能耗。

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