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Scheduling strategies to mitigate the impact of bursty traffic in wireless networks

机译:缓解无线网络中突发流量影响的调度策略

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Recent work has shown that certain queue-length based scheduling algorithms, such as max-weight, can lead to poor delays in the presence of bursty traffic. To overcome this phenomenon, we consider the problem of designing scheduling policies that are robust to bursty traffic, while also amenable to practical implementation. Specifically, we discuss two mechanisms, one based on adaptive CSMA, and the second based on maximum-weight scheduling with capped queue lengths. We consider a simple queueing network consisting of two conflicting links. The traffic served by the first link is bursty, and is modeled as being heavy-tailed, while traffic at the second link is modeled using a light-tailed arrival process. In this setting, previous work has shown that even the light-tailed traffic would experience heavy-tailed delays under max-weight scheduling. In contrast, we demonstrate a threshold phenomenon in the relationship between the arrival rates and the queue backlog distributions. In particular, we show that with an adaptive CSMA scheme, when the arrival rate of the light-tailed traffic is less than a threshold value, the light-tailed traffic experiences a light-tailed queue backlog at steady state, whereas for arrival rates above the same threshold, the light-tailed traffic experiences a heavy-tailed queue backlog. We also show that a similar threshold behavior for max-weight scheduling with capped queue lengths.
机译:最近的工作表明,某些基于队列长度的调度算法(例如最大权重)可能导致突发流量中的延迟延迟。为了克服这种现象,我们考虑了设计对突发流量具有鲁棒性的调度策略的问题,同时也适合实际实施。具体来说,我们讨论了两种机制,一种基于自适应CSMA,另一种基于具有上限队列长度的最大权重调度。我们考虑一个简单的排队网络,该网络由两个相互冲突的链接组成。第一条链路所服务的流量是突发性的,并且被建模为重尾,而第二条链路处的流量则使用轻尾到达过程进行建模。在这种情况下,以前的工作表明,即使是轻尾流量,在最大权重调度下也会遇到重尾延迟。相反,我们证明了到达率与队列积压分布之间的关系存在阈值现象。特别是,我们表明,采用自适应CSMA方案时,当轻尾交通的到达率小于阈值时,轻尾交通在稳定状态下会遇到轻尾队列积压,而到达率高于在相同的阈值下,轻尾流量会遇到重尾队列积压。我们还显示了对于具有上限队列长度的最大权重调度,类似的阈值行为。

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