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Achieving 100 Throughput for Multicast Traffic in Input-Queued Switches

机译:在输入队列交换机中实现100%的多播流量吞吐量

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A general approach of designing input-queued multicast switch is to employ multicast switch fabric, where packets can be replicated inside the switch fabric. As compared with unicast switch fabric, the achievable traffic rate region of a switch can be increased, but it is still less than the admissible traffic rate region. In other words, achieving 100% throughput for any admissible multicast traffic pattern is not possible. In this paper, we first revisit the fundamental problems faced by input-queued switch in supporting multicast traffic. We then argue that multicast switch fabric is not necessary if a load-balanced approach is followed. Accordingly, an existing load-balanced two-stage switch architecture [12], consisting of unicast switch fabrics, can be adopted to provide 100% throughput for any admissible multicast traffic pattern. Since the two-stage switch requires no speedup in both switch fabric and packet buffers, we consider it a two-stage input-queued switch. It can be seen that its implementation complexity is much lower than conventional (single-stage) input-queued multicast switches. As compared with the work in [12], our approach is more systematic and we propose a more effective load balancing mechanism.
机译:设计输入排队的多播交换机的一般方法是采用多播交换机结构,其中数据包可以在交换结构内部复制。与单播交换结构相比,可以增加交换机的可实现流量率区域,但仍小于允许的流量率区域。换句话说,对于任何允许的多播流量模式,都无法实现100%的吞吐量。在本文中,我们首先回顾了支持多播流量的输入排队交换机所面临的基本问题。然后我们认为,如果遵循负载平衡方法,则多播交换结构不是必需的。因此,可以采用由单播交换结构组成的现有负载平衡两阶段交换体系结构[12],以为任何允许的多播流量模式提供100%的吞吐量。由于两阶段交换器不需要交换结构和数据包缓冲区中的加速,因此我们将其视为两阶段输入排队的交换器。可以看出,它的实现复杂度比传统的(单级)输入排队的多播交换机要低得多。与[12]中的工作相比,我们的方法更加系统化,并且我们提出了更有效的负载平衡机制。

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