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Automated Outlier Removal for Mobile Microbenchmarking Datasets

机译:移动微基准测试数据集的自动离群值删除

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Microbenchmarking is a useful tool for fine-grained performance analysis, and represents a potentially valuable tool in the development of mobile applications and systems. However, the fine-grained measurements of microbenchmarking are inherently susceptible to noise from the underlying operating system and hardware. This noise includes outliers that must be removed in order to produce meaningful results. Existing microbenchmarking implementations utilise only simple mechanisms for removing outliers. In this paper we propose a heuristic for the automated removal of outliers from mobile microbenchmarking datasets. We then simplify this heuristic for use on mobile devices. Empirical evaluation demonstrates that our outlier removal heuristics are effective across microbenchmarking datasets collected from a range of mobile devices. Our simplified heuristic operates in log-linear time, making it suitable for use on resource-constrained mobile devices. The ability to perform outlier removal on-device without the need for post-processing on desktop or server hardware enhances the utility of mobile microbenchmarking tools. Our results present interesting opportunities for further studies across a broader range of device platforms.
机译:微基准测试是用于细粒度性能分析的有用工具,并且在移动应用程序和系统的开发中代表着潜在的有价值的工具。但是,微基准测试的细粒度测量固有地容易受到来自底层操作系统和硬件的噪声的影响。此噪声包括离群值,必须去除这些离群值才能产生有意义的结果。现有的微基准测试实施仅利用简单的机制来去除异常值。在本文中,我们提出了一种启发式方法,用于从移动微基准测试数据集中自动去除异常值。然后,我们简化了在移动设备上使用的启发式方法。实证评估表明,我们的异常值去除启发式方法在从一系列移动设备收集的微基准数据集中非常有效。我们简化的启发式算法以对数线性时间运行,使其适合在资源受限的移动设备上使用。无需在台式机或服务器硬件上进行后处理即可在设备上执行异常值移除的功能增强了移动微基准测试工具的实用性。我们的结果为在更广泛的设备平台上进行进一步研究提供了有趣的机会。

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