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Demonstration: Predicting Distributions of Service Metrics

机译:演示:预测服务指标的分布

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The ability to predict conditional distributions of service metrics is key to understanding end-to-end service behavior. From conditional distributions, other metrics can be derived, such as expected values and quantiles, which are essential for assessing SLA conformance. Our demonstrator predicts conditional distributions and derived metrics estimation in realtime, using infrastructure measurements. The distributions are modeled as Gaussian mixtures whose parameters are estimated using a mixture density network. The predictions are produced for a Video-on-Demand service that runs on a testbed at KTH.
机译:预测服务指标的条件分布的能力是理解端到端服务行为的关键。从条件分布中,可以得出其他指标,例如期望值和分位数,这对于评估SLA一致性至关重要。我们的演示者使用基础结构测量来实时预测条件分布和派生的度量估计。分布建模为高斯混合,其参数是使用混合密度网络估算的。这些预测是针对在KTH的测试平台上运行的视频点播服务生成的。

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