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Admission control for a responsive distributed middleware using decision trees to model run-time parameters

机译:使用决策树为运行时参数建模的响应式分布式中间件的准入控制

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The software in modern systems has become too complex to make accurate predictions about their performance under different configurations. Real-time or even responsiveness requirements cannot be met because it is not possible to perform admission control for new or changing tasks if we cannot tell how their execution affects the other tasks already running. Previously, we proposed a resource-allocation middleware that manages the execution of tasks in a complex distributed system with real-time requirements. The middleware behavior can be modeled depending on the configuration of the tasks running, so that the performance of any given configuration can be calculated. This makes it possible to have admission control in such a system, but the model requires knowledge of run-time parameters. We propose the utilization of machine-learning algorithms to obtain the model parameters, and be able to predict the system performance under any configuration, so that we can provide a full admission control mechanism for complex software systems. In this paper, we present such an admission control mechanism, we measure its accuracy in estimating the parameters of the model, and we evaluate its performance to determine its suitability for a real-time or responsive system.
机译:现代系统中的软件已经变得过于复杂,无法准确预测其在不同配置下的性能。无法满足实时甚至响应性要求,因为如果我们无法确定新任务或更改任务的执行如何影响已经运行的其他任务,则无法执行准入控制。以前,我们提出了一种资源分配中间件,用于管理具有实时需求的复杂分布式系统中的任务执行。可以根据正在运行的任务的配置对中间件行为进行建模,以便可以计算任何给定配置的性能。这使得在这样的系统中具有准入控制成为可能,但是该模型需要了解运行时参数。我们提出利用机器学习算法来获取模型参数,并能够在任何配置下预测系统性能,从而为复杂的软件系统提供完整的准入控制机制。在本文中,我们提出了一种准入控制机制,我们在估计模型参数时测量其准确性,并评估其性能,以确定其对实时或响应系统的适用性。

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