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Performance models of storage contention in cloud environments

机译:云环境中存储争用的性能模型

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We propose simple models to predict the performance degradation of disk requests due to storage device contention in consolidated virtualized environments. Model parameters can be deduced from measurements obtained inside Virtual Machines (VMs) from a system where a single VM accesses a remote storage server. The parameterized model can then be used to predict the effect of storage contention when multiple VMs are consolidated on the same server. We first propose a trace-driven approach that evaluates a queueing network with fair share scheduling using simulation. The model parameters consider Virtual Machine Monitor level disk access optimizations and rely on a calibration technique. We further present a measurement-based approach that allows a distinct characterization of read/write performance attributes. In particular, we define simple linear prediction models for I/O request mean response times, throughputs and read/write mixes, as well as a simulation model for predicting response time distributions. We found our models to be effective in predicting such quantities across a range of synthetic and emulated application workloads.
机译:我们提出了简单的模型来预测由于合并的虚拟化环境中的存储设备争用而导致磁盘请求的性能下降。可以从单个计算机访问远程存储服务器的系统的虚拟机(VM)内部获得的测量结果推导出模型参数。然后,当将多个VM整合到同一服务器上时,可以使用参数化模型来预测存储争用的效果。我们首先提出一种跟踪驱动的方法,该方法使用模拟来评估具有公平份额调度的排队网络。模型参数考虑了虚拟机监视器级别的磁盘访问优化,并依赖于校准技术。我们进一步提出了一种基于测量的方法,该方法允许对读/写性能属性进行独特的表征。特别是,我们为I / O请求平均响应时间,吞吐量和读写混合定义了简单的线性预测模型,以及用于预测响应时间分布的仿真模型。我们发现我们的模型可有效预测各种合成和仿真应用程序工作负载中的此类数量。

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