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Run-time power and performance scaling in 28 nm FPGAs

机译:28 nm FPGA中的运行时功率和性能扩展

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摘要

The ability of scaling power and performance at run-time enables the creation of computing systems in which energy is consumed in proportion of the work to be done and the time available to do it. These systems favour active energy-efficient states in which useful computation is performed at low energy instead of using inactive energy savings modes that incur large latency and energy penalties to enter and exit modes in which the system is halted. This is particular useful in servers that spend most of their time at around 30% utilisation and are rarely fully idle or at maximum utilisation. A feature of an energy proportional computing system is that it must exhibit a wide dynamic range with multiple levels of energy and performance available. In this context, this study investigates how these levels can be obtained in commercially available state-of-the-art 28 nm fieldprogrammable gate arrays (FPGAs) and characterises its benefits. Adaptive voltage and frequency scaling is employed to deliver proportional performance and power in these FPGA devices. The results reveal that the available voltage and frequency margins create a large number of performance and energy states with scaling possible at run-time with low overheads. Power savings of up to 64.98% are possible maintaining the original performance at a lower voltage.
机译:在运行时扩展功率和性能的能力使得能够创建计算系统,其中所消耗的能量与要完成的工作和完成该任务所需的时间成比例。这些系统支持在低能量状态下执行有用计算的主动节能状态,而不是使用会导致较大的等待时间和能量损失的非主动节能模式来进入和退出系统暂停模式。这在服务器上将大部分时间花费在30%左右的利用率上,而很少完全空闲或处于最大利用率的情况下尤其有用。能量比例计算系统的一个特点是它必须具有宽泛的动态范围,并具有多种可用的能量和性能。在这种情况下,本研究调查了如何在市售的28 nm现场可编程门阵列(FPGA)中获得这些水平,并描述了其优势。自适应电压和频率缩放用于在这些FPGA器件中提供成比例的性能和功率。结果表明,可用的电压和频率裕度会创建大量性能和能量状态,并在运行时以低开销进行缩放。在较低的电压下可以保持高达64.98%的功耗,从而保持原始性能。

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