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Energy-Awareness and Performance Management with Parallel Dataflow Applications

机译:并行数据流应用程序的能源意识和性能管理

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Applications have traditionally been executed as fast as possible (Race-to-Idle) and mapped to as many cores as possible (Fair scheduling) to minimize the energy consumption. With modern hardware, this method has become inefficient because of the power characteristics of the platforms. Instead, applications should utilize an optimal combination of clock frequency and number of cores to balance the dynamic and static power. Such approaches have been difficult to achieve since resource allocation is based only on CPU utilization. Resources are then allocated to prohibit over utilization rather than following software performance requirements. By adjusting the clock frequency directly according to software requirements and activating CPU cores according to the application parallelism, significant energy can be saved by lowering the average power dissipation. To enforce these recommendations, this paper provides means of expressing performance and parallelism in applications for more tight integration with the power management to balance the execution speed and mapping on multi-core systems. An interface between the applications and the hardware resources is provided in combination with a novel power management runtime system called Bricktop. A signal processing case study demonstrates real-world energy savings up to 50 % without performance degradation.
机译:传统上,应用程序已尽可能快地执行(Race-to-Idle)并映射到尽可能多的内核(公平调度)以最小化能耗。对于现代硬件,由于平台的功率特性,该方法已变得效率低下。相反,应用程序应利用时钟频率和内核数的最佳组合来平衡动态和静态功耗。由于资源分配仅基于CPU利用率,因此很难实现这种方法。然后分配资源以禁止过度使用,而不是遵循软件性能要求。通过直接根据软件要求调整时钟频率并根据应用程序并行性激活CPU内核,可以通过降低平均功耗来节省大量能量。为了实施这些建议,本文提供了在应用程序中表达性能和并行性的方法,以便与电源管理更紧密地集成,以平衡执行速度和在多核系统上的映射。应用程序和硬件资源之间的接口与称为Bricktop的新型电源管理运行时系统结合在一起提供。信号处理案例研究表明,在现实世界中,节能最多可节省50%,而不会降低性能。

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