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H-BIND: a new approach to providing statistical performance guarantees to VBR traffic

机译:H-BIND:为VBR流量提供统计性能的新方法

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Current solutions to providing statistical performance guarantees to bursty traffic such as compressed video encounter several problems: (1) source traffic descriptors are often too simple to capture the burstiness and important time-correlations of VBR sources or too complex to be used for admission control algorithms; (2) stochastic descriptions of a source are inherently difficult for the network to enforce or police; (3) multiplexing inside the network's queues may change the stochastic properties of the source in an intractable way, precluding the provision of end-to-end QoS guarantees to heterogeneous sources with different performance requirements. We present a new approach to providing end-to-end statistical performance guarantees that overcomes these limitations. We term the approach hybrid bounding interval dependent (H-BIND) because it uses the deterministic-BIND traffic model to capture the correlation structure and burstiness properties of a stream; but unlike a deterministic performance guarantee, it achieves a statistical multiplexing gain (SMG) by exploiting the statistical properties of deterministically-bounded streams. Using traces of MPEG-compressed video, we show that the H-BIND scheme can achieve average network utilizations of up to 86% in a realistic scenario.
机译:提供统计性能的当前解决方案保证爆发的流量,如压缩视频遇到几个问题:(1)源流量描述符通常太简单,无法捕捉VBR源或过于复杂的频繁和重要的时间相关性以用于准入控制算法; (2)网络的随机描述本质上难以执行或警察; (3)网络内部的队列中的多路复用可以以棘手的方式改变源的随机特性,排除提供端到端的QoS,以具有不同性能要求的异构来源。我们提出了一种新的方法来提供克服这些限制的端到端统计表现保证。我们术语接近混合限制间隔依赖(H-BIND),因为它使用确定性 - 绑定业务模型来捕获流的相关结构和突发性属性;但与确定性性能保证不同,它通过利用确定界限流的统计特性来实现统计复用增益(SMG)。使用MPEG压缩视频的痕迹,我们表明H-Bind方案可以在现实方案中实现高达86%的平均网络利用。

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