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SOM-based aging detection for Virtual Machine Monitor

机译:虚拟机监视器的基于SOM的老化检测

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A virtual monitor machine (VMM) inevitably goes through software aging due to its characteristics of large and complex middleware and long-time and continuous running. The VMM aging manifests as gradually degrading performance and an increasing failure occurrence rate, due to error conditions that accrue over time and eventually lead the VMM to failure. To counteract the VMM aging, this paper proposes an aging detection and quantification algorithm for Virtual Machine Monitor, which applies Self-organizing Maps (SOM) to capture VMM behaviors from runtime measurement data and takes a neighborhood area density of a winning neuron as an aging quantification metric to detect VMM aging. Results of two experiments injecting different resource leaks on the Xen platform show that the algorithm has a high true positive rate and a low false positive rate.
机译:虚拟监视器机(VMM)由于具有大型而复杂的中间件以及长期连续运行的特性,不可避免地要经历软件老化。 VMM老化表现为随着时间逐渐累积并最终导致VMM发生故障的错误状况,逐渐降低了性能并增加了故障发生率。为了抵消VMM的老化,本文提出了一种虚拟机监视器的老化检测和量化算法,该算法应用自组织映射(SOM)从运行时测量数据中捕获VMM行为,并将获胜神经元的邻域密度作为老化。量化指标以检测VMM老化。在Xen平台上注入不同资源泄漏的两个实验的结果表明,该算法具有很高的真实肯定率和较低的错误肯定率。

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