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Experimental evaluation of N-tier systems: Observation and analysis of multi-bottlenecks

机译:N层系统的实验评估:多重瓶颈的观察和分析

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In many areas such as e-commerce, mission-critical N-tier applications have grown increasingly complex. They are characterized by non-stationary workloads (e.g., peak load several times the sustained load) and complex dependencies among the component servers. We have studied N-tier applications through a large number of experiments using the RUBiS and RUBBoS benchmarks. We apply statistical methods such as kernel density estimation, adaptive filtering, and change detection through multiple-model hypothesis tests to analyze more than 200GB of recorded data. Beyond the usual single-bottlenecks, we have observed more intricate bottleneck phenomena. For instance, in several configurations all system components show average resource utilization significantly below saturation, but overall throughput is limited despite addition of more resources. More concretely, our analysis shows experimental evidence of multi-bottleneck cases with low average resource utilization where several resources saturate alternatively, indicating a clear lack of independence in their utilization. Our data corroborates the increasing awareness of the need for more sophisticated analytical performance models to describe N-tier applications that do not rely on independent resource utilization assumptions. We also present a preliminary taxonomy of multi-bottlenecks found in our experimentally observed data.
机译:在电子商务等许多领域,关键任务的N层应用程序变得越来越复杂。它们的特点是不稳定的工作负载(例如,峰值负载是持续负载的几倍)以及组件服务器之间的复杂依赖关系。我们已经使用RUBiS和RUBBoS基准通过大量实验研究了N层应用程序。我们采用统计方法(例如核密度估计,自适应过滤和通过多模型假设检验的变化检测)来分析200GB以上的记录数据。除了常见的单瓶颈之外,我们还观察到了更复杂的瓶颈现象。例如,在几种配置中,所有系统组件均显示平均资源利用率大大低于饱和度,但是尽管添加了更多资源,但总体吞吐量受到限制。更具体地说,我们的分析显示了多资源瓶颈案例的实验证据,这些案例的平均资源利用率较低,其中几种资源交替饱和,表明它们的利用率明显缺乏独立性。我们的数据证实了人们对使用更复杂的分析性能模型来描述不依赖独立资源利用假设的N层应用程序的认识的日益增强。我们还提供了在我们的实验观察数据中发现的多重瓶颈的初步分类法。

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