Analysis of Self-Similar Workload on Real-Time Systems

Enrique Hernández-Orallo, Joan Vila i Carbó
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引用次数: 4

Abstract

Real-time systems used in media processing and transmission produce bursty workloads with highly variable execution and transmission times. To avoid the drawbacks of using the worst-case approach with these workloads, this paper uses a variation of the usual real-time task model where the WCET is replaced by a discrete statistical distribution. Using this approach, tasks are characterized by their processing time over a sampling period. We could expect that increasing the sampling period would smooth, in principle, the workload variability and the proposed analysis would provide more deterministic long- term results. However, we have surprisingly observed that this variability does not decreases with the sampling period: work- loads are bursty on many time scales. This property is known as self-similarity and is measured using the Hurst parameter.This paper studies how to properly model and analyze self- similar task sets showing the influence of the Hurst parameter on the schedulability analysis. It shows, through an analytical model and simulations, that this parameter may have a very negative impact on system performance. As a conclusion, it can be stated that this factor should be taken into account for statistical analysis of real-time systems, since simplistic workload models can lead to inaccurate results. It also shows that the negative effect of this parameter can be bounded using scheduling policies based on the bandwidth isolation principle.
实时系统自相似工作负载分析
用于媒体处理和传输的实时系统产生具有高度可变的执行和传输时间的突发工作负载。为了避免在这些工作负载中使用最坏情况方法的缺点,本文使用了通常的实时任务模型的一种变体,其中WCET被离散统计分布取代。使用这种方法,任务的特征是它们在一个采样周期内的处理时间。我们可以预期,增加抽样周期原则上将平滑工作量的可变性,而建议的分析将提供更确定的长期结果。然而,令人惊讶的是,我们观察到这种可变性并没有随着采样周期而减少:工作负载在许多时间尺度上都是突发的。这种特性被称为自相似性,并使用赫斯特参数进行测量。研究了如何正确地对自相似任务集进行建模和分析,揭示了Hurst参数对可调度性分析的影响。通过分析模型和仿真表明,该参数可能对系统性能产生非常负面的影响。总之,可以这样说,在对实时系统进行统计分析时应该考虑到这个因素,因为过于简单的工作负载模型可能导致不准确的结果。通过基于带宽隔离原则的调度策略,可以限制该参数的负面影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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