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System-level application-aware dynamic power management in adaptive pipelined MPSoCs for multimedia

机译:多媒体的自适应流水线式MPSoC中的系统级应用感知动态电源管理

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System-level dynamic power management (DPM) schemes in Multiprocessor System on Chips (MPSoCs) exploit the idleness of processors to reduce the energy consumption by putting idle processors to low-power states. In the presence of multiple low-power states, the challenge is to predict the duration of the idle period with high accuracy so that the most beneficial power state can be selected for the idle processor. In this work, we propose a novel dynamic power management scheme for adaptive pipelined MPSoCs, suitable for multimedia applications. We leverage application knowledge in the form of future workload prediction to forecast the duration of idle periods. The predicted duration is then used to select an appropriate power state for the idle processor. We proposed five heuristics as part of the DPM and compared their effectiveness using an MPSoC implementation of the H.264 video encoder supporting HD720p at 30 fps. The results show that one of the application prediction based heuristic (MAMAPBH) predicted the most beneficial power states for idle processors with less than 3% error when compared to an optimal solution. In terms of energy savings, MAMAPBH was always within 1% of the energy savings of the optimal solution. When compared with a naive approach (where only one of the possible power states is used for all the idle processors), MAMAPBH achieved up to 40% more energy savings with only 0.5% degradation in throughput. These results signify the importance of leveraging application knowledge at system-level for dynamic power management schemes.
机译:多处理器片上系统(MPSoC)中的系统级动态电源管理(DPM)方案利用处理器的空闲状态,通过将空闲处理器置于低功耗状态来降低能耗。在存在多个低功耗状态时,挑战在于以高精度预测空闲时段的持续时间,以便可以为空闲处理器选择最有利的功耗状态。在这项工作中,我们为自适应流水线MPSoC提出了一种新颖的动态电源管理方案,适用于多媒体应用。我们以未来工作量预测的形式利用应用程序知识来预测空闲时间段的持续时间。然后,将预测的持续时间用于为空闲处理器选择适当的电源状态。我们提出了五种启发式方法作为DPM的一部分,并使用支持30 fps的HD720p的H.264视频编码器的MPSoC实现对它们的有效性进行了比较。结果表明,与最佳解决方案相比,一种基于应用程序预测的启发式方法(MAMAPBH)预测了空闲处理器的最有利功耗状态,其误差小于3%。在节能方面,MAMAPBH始终处于最佳解决方案节能量的1%之内。与单纯的方法(所有空闲处理器仅使用一种可能的电源状态)相比,MAPAPBH节省了多达40%的能源,而吞吐量却仅降低了0.5%。这些结果表明在动态电源管理方案中利用系统级应用知识的重要性。

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