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Performance and fluid simulations of a novel shared buffer management system

机译:新型共享缓冲区管理系统的性能和流体模拟

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We consider a switching system which has multiple ports that share a common buffer, in which there is a FIFO logical queue for each port. Each port may support a large number of flows or connections, which are approximately homogeneous in their statistical characteristics, with common QoS requirements in cell loss and maximum delay. Heterogeneity may exist across ports. Our first contribution is a buffer management scheme based on buffer admission control, which is integrated with connection admission control at the switch, and is at the same time fair, efficient and robust in sharing the buffer resources across ports. Our scheme is based on the resource-sharing technique of virtual partitioning. Our second major contribution is to advance the practice of discrete-event fluid simulations. Such simulations are approximations to cell-level simulations and offer orders of magnitude speed-up. A third contribution of the paper is the formulation and solution of a problem of optimal allocation of bandwidth and buffers to each port having specific delay bounds, in a lossless multiplexing framework. Finally, we report on extensive simulation results. The scheme is found to be effective, efficient and robust.
机译:我们考虑一个交换系统,该切换系统具有共享公共缓冲区的多个端口,其中每个端口都有一个FIFO逻辑队列。每个端口可以支持大量流量或连接,其在其统计特征中大致均匀,具有常见的QoS要求在单元丢失和最大延迟中。异质性可能存在于端口上。我们的第一个贡献是一种基于缓冲区管理控制的缓冲区管理方案,它在交换机上与连接录取控制集成,并且同时在端口共享缓冲区资源的同一时间公平,高效且强大。我们的计划是基于虚拟分区的资源共享技术。我们的第二个主要贡献是推进离散事件流体模拟的做法。这种模拟是细胞级模拟的近似值,并提供幅度加速的级。纸张的第三贡献是在无损复用框架中具有特定延迟界限的每个端口的带宽和缓冲区的最佳分配问题的制定和解决方案。最后,我们报告了广泛的仿真结果。发现该方案有效,高效且稳健。

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