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Maximum and Maximal Weight Matching Dispatching Schemes for MSM Clos-Network Packet Switches

机译:MSM封闭网络数据包交换机的最大和最大权重匹配调度方案

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摘要

The scalability of three-stage Clos-network packet switches makes them an attractive approach in implementing large-size packet switches. However, the configuration time of Clos-network switches depends on both the buffering strategy used and the adopted configuration process. To reduce configuration time, this paper focuses on the so-called Memory-Space-Memory (MSM) Clos-network packet switch, where the switch modules in the first and third stages use memory to support resolution of output port contention. The configuration of these switches is then based on a process to dispatch cells from the first-stage modules to the third-stage modules. Therefore, the throughput of an MSM Clos-network switch depends on the dispatching scheme used. This paper introduces a cell dispatching scheme, called maximum weight matching dispatching (MWMD) scheme, for MSM Clos-network switches and a request queue structure in the first-stage modules. The MWMD scheme performs maximum weight matching, similar to that used for input-queued single-stage packet switches, that in combination with the request queues can achieve 100% throughput under independent and identical admissible traffic. This high throughput can be achieved without allocating buffers in the second stage and without expanding the second stage of this three-stage packet switch. A low-complexity dispatching scheme, the maximal oldest-cell-first matching dispatching (MOMD) scheme, is also introduced as an alternative to MWMD. The performance evaluation in this paper shows that MOMD achieves high throughput under unbalanced traffic through the execution of a finite number of iterations.
机译:三级Clos网络数据包交换机的可伸缩性使其成为实现大型数据包交换机的一种有吸引力的方法。但是,Clos网络交换机的配置时间取决于使用的缓冲策略和采用的配置过程。为了减少配置时间,本文重点介绍了所谓的内存空间内存(MSM)Clos网络数据包交换,其中第一阶段和第三阶段的交换模块使用内存来支持输出端口争用的解决。这些交换机的配置然后基于将单元从第一级模块分配到第三级模块的过程。因此,MSM Clos网络交换机的吞吐量取决于所使用的调度方案。本文介绍了一种用于MSM Clos网络交换机的小区调度方案,称为最大权重匹配调度(MWMD)方案,并在第一阶段模块中提出了请求队列结构。 MWMD方案执行最大的权重匹配,类似于用于输入排队的单级分组交换的权重匹配,该方案与请求队列结合可以在独立且相同的允许流量下实现100%的吞吐量。无需在第二阶段分配缓冲区,也无需扩展此三阶段数据包交换的第二阶段,就可以实现这种高吞吐量。还引入了一种低复杂度的调度方案,即最大的最早的单元优先匹配调度(MOMD)方案,作为MWMD的替代方案。本文的性能评估表明,通过执行有限数量的迭代,MOMD在不平衡流量下实现了高吞吐量。

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