Performance analysis of real-time rewriting models

Jounaidi Ben Hassan, O. Hasan, Tarek Sadani, S. Tahar
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Abstract

Real-time systems usually involve a subtle interaction of a number of distributed components and have a high degree of parallelism, which makes their performance analysis quite complex. Thus, traditional techniques, such as simulation, fail to produce reasonable results. Formal methods pose an interesting solution but they usually lack the capabilities to reason about quantitative time and probabilistic properties, which play a vital role in performance analysis. This paper addresses this issue by presenting a formal approach for assessing the performance of a real-time system. To describe the evolution of the system, we use a real-time rewriting logic, in which we mechanize the extraction of quantitative information from a timed model. To evaluate the performance, we first consider the set of runs obtained from different initial input values that are not equivalent modulo the equational theory associated with the model. The overall performance of the system is then evaluated as the performance of each run weighted by its probability mass function. In order to illustrate the practical effectiveness of the proposed approach, we present the formal modeling and performance analysis of a simple search engine.
实时重写模型的性能分析
实时系统通常涉及许多分布式组件的微妙交互,并且具有高度的并行性,这使得它们的性能分析非常复杂。因此,传统的技术,如模拟,不能产生合理的结果。形式化方法提供了一个有趣的解决方案,但它们通常缺乏推理定量时间和概率属性的能力,而这在性能分析中起着至关重要的作用。本文通过提出一种评估实时系统性能的正式方法来解决这个问题。为了描述系统的演变,我们使用了实时重写逻辑,其中我们机械化地从定时模型中提取定量信息。为了评估性能,我们首先考虑从不同初始输入值获得的运行集,这些输入值与模型相关的方程理论的模不相等。然后,系统的整体性能被评估为每次运行的性能由其概率质量函数加权。为了说明该方法的实际有效性,我们给出了一个简单搜索引擎的形式化建模和性能分析。
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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