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System-level power-performance tradeoffs for reconfigurable computing

机译:用于可重构计算的系统级电源性能折衷

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In this paper, we propose a configuration-aware data-partitioning approach for reconfigurable computing. We show how the reconfiguration overhead impacts the data-partitioning process. Moreover, we explore the system-level power-performance tradeoffs available when implementing streaming embedded applications on fine-grained reconfigurable architectures. For a certain group of streaming applications, we show that an efficient hardware/software partitioning algorithm is required when targeting low power. However, if the application objective is performance, then we propose the use of dynamically reconfigurable architectures. We propose a design methodology that adapts the architecture and algorithms to the application requirements. The methodology has been proven to work on a real research platform based on Xilinx devices. Finally, we have applied our methodology and algorithms to the case study of image sharpening, which is required nowadays in digital cameras and mobile phones.
机译:在本文中,我们提出了一种用于可重配置计算的可感知配置的数据分区方法。我们展示了重新配置的开销如何影响数据分区过程。此外,当在细粒度可重配置架构上实施流式嵌入式应用程序时,我们将探讨可用的系统级功率性能折衷。对于特定的一组流应用程序,我们表明在以低功耗为目标时需要一种有效的硬件/软件分区算法。但是,如果应用程序的目标是性能,那么我们建议使用动态可重新配置的体系结构。我们提出一种设计方法,使体系结构和算法适应应用程序需求。该方法论已被证明可以在基于Xilinx器件的真实研究平台上工作。最后,我们将我们的方法和算法应用于图像锐化的案例研究,这在当今数码相机和移动电话中是必需的。

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