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An Impulse-C Hardware Accelerator for Packet Classification Based on Fine/Coarse Grain Optimization

机译:基于精细/粗粒度优化的脉冲C硬件加速器,用于数据包分类

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Current software-based packet classification algorithms exhibit relatively poor performance, prompting many researchers to concentrate on novel frameworks and architectures that employ both hardware and software components. The Packet Classification with Incremental Update (PCIU) algorithm, Ahmed et al. (2010), is a novel and efficient packet classification algorithm with a unique incremental update capability that demonstrated excellent results and was shown to be scalable for many different tasks and clients. While a pure software implementation can generate powerful results on a server machine, an embedded solution may be more desirable for some applications and clients. Embedded, specialized hardware accelerator based solutions are typically much more efficient in speed, cost, and size than solutions that are implemented on general-purpose processor systems. This paper seeks to explore the design space of translating the PCIU algorithm into hardware by utilizing several optimization techniques, ranging from fine grain to coarse grain and parallel coarse grain approaches. The paper presents a detailed implementation of a hardware accelerator of the PCIU based on an Electronic System Level (ESL) approach. Results obtained indicate that the hardware accelerator achieves on average 27x speedup over a state-of-the-art Xeon processor.
机译:当前基于软件的分组分类算法表现出相对较差的性能,促使许多研究人员专注于采用硬件和软件组件的新型框架和架构。带有增量更新的数据包分类(PCIU)算法,Ahmed等。 (2010)是一种新颖高效的数据包分类算法,具有独特的增量更新功能,具有出色的结果,并且可针对许多不同的任务和客户端进行扩展。虽然纯软件实现可以在服务器计算机上生成强大的结果,但对于某些应用程序和客户端而言,嵌入式解决方案可能更为理想。与嵌入式通用专用处理器系统上实现的解决方案相比,基于嵌入式,专用硬件加速器的解决方案在速度,成本和大小上通常要高效得多。本文试图探索利用几种优化技术将PCIU算法转换为硬件的设计空间,这些技术包括从细粒度到粗粒度以及并行粗粒度方法。本文介绍了基于电子系统级(ESL)方法的PCIU硬件加速器的详细实现。获得的结果表明,硬件加速器的速度比最先进的Xeon处理器平均提高了27倍。

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