自动化多个系统版本的性能偏差分析:一项演化研究

Felipe A. P. Pinto, U. Kulesza, Christoph Treude
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引用次数: 4

摘要

本文提出了一种基于场景的方法,用于评估性能的质量属性,以执行时间(响应时间)来衡量。该方法是由一个框架实现的,该框架使用动态分析和存储库挖掘技术来提供一种自动化的方法,以揭示软件系统版本之间场景性能下降的潜在来源。该方法定义了四个阶段:(i)准备—选择方案和准备目标版本;(ii)动态分析-通过计算执行时间来确定方案和方法的性能;(iii)降解分析-处理和比较不同排放物的动态分析结果;(iv)存储库挖掘——识别与性能偏差相关的开发问题和提交。本文还描述了将该方法应用于Netty、Wicket和Jetty框架的多个版本的渐进式研究。该研究分析了每个系统的七个版本,并处理了总共57个场景。总的来说,我们发现Netty有14个显著性能偏差的场景,Wicket有13个,Jetty有9个,几乎所有这些都可以归因于源代码更改。我们还讨论了从Netty, Wicket和Jetty的八个开发者那里获得的反馈,这是一份问卷调查的结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Automating the performance deviation analysis for multiple system releases: An evolutionary study
This paper presents a scenario-based approach for the evaluation of the quality attribute of performance, measured in terms of execution time (response time). The approach is implemented by a framework that uses dynamic analysis and repository mining techniques to provide an automated way for revealing potential sources of performance degradation of scenarios between releases of a software system. The approach defines four phases: (i) preparation - choosing the scenarios and preparing the target releases; (ii) dynamic analysis - determining the performance of scenarios and methods by calculating their execution time; (iii) degradation analysis - processing and comparing the results of the dynamic analysis for different releases; and (iv) repository mining - identifying development issues and commits associated with performance deviation. The paper also describes an evolutionary study of applying the approach to multiple releases of the Netty, Wicket and Jetty frameworks. The study analyzed seven releases of each system and addressed a total of 57 scenarios. Overall, we have found 14 scenarios with significant performance deviation for Netty, 13 for Wicket, and 9 for Jetty, almost all of which could be attributed to a source code change. We also discuss feedback obtained from eight developers of Netty, Wicket and Jetty as result of a questionnaire.
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