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SolarCore: Solar energy driven multi-core architecture power management

机译:Solarcore:太阳能驱动的多核架构电源管理

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The global energy crisis and environmental concerns (e.g. global warming) have driven the IT community into the green computing era. Of clean, renewable energy sources, solar power is the most promising. While efforts have been made to improve the performance-per-watt, conventional architecture power management schemes incur significant solar energy loss since they are largely workload-driven and unaware of the supply-side attributes. Existing solar power harvesting techniques improve the energy utilization but increase the environmental burden and capital investment due to the inclusion of large-scale batteries. Moreover, solar power harvesting itself cannot guarantee high performance without appropriate load adaptation. To this end, we propose SolarCore, a solar energy driven, multi-core architecture power management scheme that combines maximal power provisioning control and workload run-time optimization. Using real-world meteorological data across different geographic sites and seasons, we show that SolarCore is capable of achieving the optimal operation condition (e.g. maximal power point) of solar panels autonomously under various environmental conditions with a high green energy utilization of 82% on average. We propose efficient heuristics for allocating the time varying solar power across multiple cores and our algorithm can further improve the workload performance by 10.8% compared with that of round-robin adaptation, and at least 43% compared with that of conventional fixed-power budget control. This paper makes the first step on maximally reducing the carbon footprint of computing systems through the usage of renewable energy sources. We expect that the novel joint optimization techniques proposed in this paper will contribute to building a truly sustainable, high-performance computing environment.
机译:全球能源危机和环境问题(例如,全球变暖)使IT社区推向了绿色计算时代。清洁,可再生能源,太阳能是最有前途的。虽然已经努力提高了按瓦特的性能,但传统的建筑电力管理方案引起了显着的太阳能损失,因为它们主要是工作负载驱动和不知道供应侧属性。现有的太阳能收集技术提高了能源利用,但由于包含大型电池,增加了环境负担和资本投资。此外,无需适当的负载适应,太阳能收获本身无法保证高性能。为此,我们提出了结合最大功率供应控制和工作负载运行时间优化的太阳能驱动,多核架构电源管理方案。在不同地理位点和季节的现实气象数据中,我们表明,在各种环境条件下,索尔加雷能够在各种环境条件下自主地实现太阳能电池板的最佳操作条件(例如最大功率点),平均高出绿色能量利用率为82% 。我们提出了跨越多核的时间变化太阳能的高效启发式,而我们的算法可以进一步将工作量的性能进一步提高10.8%,而循环自适应比传统的固定功率预算控制相比至少43% 。本文通过使用可再生能源,第一步使得最大限度地减少计算系统的碳足迹。我们预计本文提出的新型联合优化技术将有助于构建真正可持续的高性能计算环境。

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