Work-in-Progress Abstract: WKS, a local unsupervised statistical algorithm for the detection of transitions in timing analysis

IF 0.5 Q4 COMPUTER SCIENCE, SOFTWARE ENGINEERING
Marwan Wehaiba el Khazen, L. Cucu-Grosjean, A. Gogonel, Hadrien A. Clarke, Y. Sorel
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引用次数: 2

Abstract

The increased complexity of programs and processors is an important challenge that the embedded real-time systems community faces today, as it implies substancial timing variability. Processor features like pipelines or communication buses are not always completely described, while black-box programs integrated by third parties are hidden for IP reasons. This situation explains the use of statistical approaches to study the timing variability of programs. Most existing work is concentrated on the guarantees provided by positive answers to statistical tests, while our current work concerns potential algorithms based on the negative answers to these tests and their impact on the timing analysis. We introduce here one such algorithm, the Walking Kolmogorov-Smirnov test (WKS).
摘要:WKS是一种局部无监督统计算法,用于检测时序分析中的过渡
程序和处理器复杂性的增加是嵌入式实时系统社区今天面临的一个重要挑战,因为它意味着大量的时间可变性。处理器功能,如管道或通信总线并不总是完全描述,而由第三方集成的黑箱程序由于IP原因是隐藏的。这种情况解释了使用统计方法来研究程序的时间可变性的原因。大多数现有的工作都集中在统计测试的正面答案所提供的保证上,而我们目前的工作关注的是基于这些测试的负面答案及其对时间分析的影响的潜在算法。我们在这里介绍一个这样的算法,行走Kolmogorov-Smirnov测试(WKS)。
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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来源期刊
CiteScore
1.70
自引率
14.30%
发文量
17
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