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Large-scale parallel server system with multi-component jobs

机译:具有多组件作业的大型并行服务器系统

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A broad class of parallel server systems is considered, for which we prove the steady-state asymptotic independence of server workloads, as the number of servers goes to infinity, while the system load remains sub-critical. Arriving jobs consist of multiple components. There are multiple job classes, and each class may be of one of two types, which determines the rule according to which the job components add workloads to the servers. The model is broad enough to include as special cases some popular queueing models with redundancy, such as cancel-on-start and cancel-on-completion redundancy. Our analysis uses mean-field process representation and the corresponding mean-field limits. In essence, our approach relies almost exclusively on three fundamental properties of the model: (a) monotonicity, (b) work conservation and (c) the property that, on average, "new arriving workload prefers to go to servers with lower workloads."
机译:考虑广泛的并行服务器系统,我们证明了服务器工作负载的稳态渐近独立性,因为服务器的数量进入无限远,而系统负载保持潜在关键。 到达工作包括多个组件。 有多个作业类,每个类可以是两种类型中的一种,它根据作业组件将工作负载添加到服务器的规则中确定规则。 该模型足够广泛,可以包括一些具有冗余的一些流行的排队模型,例如取消启动和取消完成冗余。 我们的分析使用平均场过程表示和相应的平均场限制。 从本质上讲,我们的方法几乎完全依赖于模型的三个基本属性:(a)单调性,(b)工作保育和(c),平均而言,新的到达工作量更喜欢使用较低工作负载的服务器。 “

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