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Distributed Packet Buffers for High-Bandwidth Switches and Routers

机译:高带宽交换机和路由器的分布式数据包缓冲区

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摘要

High-speed routers rely on well-designed packet buffers that support multiple queues, provide large capacity and short response times. Some researchers suggested combined SRAM/DRAM hierarchical buffer architectures to meet these challenges. However, these architectures suffer from either large SRAM requirement or high time-complexity in the memory management. In this paper, we present scalable, efficient, and novel distributed packet buffer architecture. Two fundamental issues need to be addressed to make this architecture feasible: 1) how to minimize the overhead of an individual packet buffer; and 2) how to design scalable packet buffers using independent buffer subsystems. We address these issues by first designing an efficient compact buffer that reduces the SRAM size requirement by (k-1)/k. Then, we introduce a feasible way of coordinating multiple subsystems with a load-balancing algorithm that maximizes the overall system performance. Both theoretical analysis and experimental results demonstrate that our load-balancing algorithm and the distributed packet buffer architecture can easily scale to meet the buffering needs of high bandwidth links and satisfy the requirements of scale and support for multiple queues.
机译:高速路由器依靠精心设计的数据包缓冲区来支持多个队列,并提供大容量和较短的响应时间。一些研究人员建议结合使用SRAM / DRAM分层缓冲区架构来应对这些挑战。但是,这些架构受SRAM需求大或内存管理时间复杂度高。在本文中,我们提出了可扩展,高效且新颖的分布式数据包缓冲区体系结构。为了使该体系结构可行,需要解决两个基本问题:1)如何最小化单个数据包缓冲区的开销; 2)如何使用独立的缓冲区子系统设计可伸缩的数据包缓冲区。我们通过首先设计一种高效的紧凑型缓冲器来解决这些问题,该缓冲器将SRAM大小要求降低了(k-1)/ k。然后,我们介绍了一种使用负载平衡算法协调多个子系统的可行方法,该算法可使整个系统的性能最大化。理论分析和实验结果均表明,我们的负载均衡算法和分布式数据包缓冲区体系结构可以轻松扩展,以满足高带宽链路的缓冲需求,并满足扩展和支持多个队列的要求。

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