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Towards Automated Monitoring and Forecasting of Probabilistic Quality Properties in Open Source Software (OSS): A Striking Hybrid Approach

机译:走向开源软件(OSS)中的概率质量属性的自动监视和预测:一种惊人的混合方法

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In this paper, we propose a hybrid approach based on the aspect-orientation methodology and time series analysis to the runtime monitoring and quality forecasting of OSS. Specifically, the major objective of this work is to combine the idea of time series analysis with the area of software quality assurance of OSS in which statistical techniques for analyzing of time series is used to facilitate the prediction and forecasting (the term ȁ8;predictionȁ9; and ȁ8;forecastingȁ9; are interchangeably used in the literature) of probabilistic quality properties, which are difficult or inapplicable to be evaluated by current approaches such as testing, and also help to increase the reliability and productivity of working OSS system components (towards trustworthy open source software development) requiring extreme runtime quality control. Furthermore, in order to reduce the human effort and to cope with more sophisticated scenarios, this study also aims to automate the analysis and modeling process by providing appropriate tool.
机译:在本文中,我们提出了一种基于面向方面的方法和时间序列分析的混合方法,用于OSS的运行时监视和质量预测。具体来说,这项工作的主要目的是将时间序列分析的思想与OSS的软件质量保证领域相结合,在OSS中,使用时间序列分析的统计技术来促进预测和预测(术语“ 8;预测” 9;术语“预测”)。和ȁ8;预测ȁ9;在文献中可互换使用)概率质量属性,这些属性很难或不适合通过当前方法(例如测试)进行评估,并且还有助于提高工作中的OSS系统组件的可靠性和生产率(朝着值得信赖的方向开放)源软件开发),需要对运行时进行严格的质量控制。此外,为了减少人力并应对更复杂的情况,本研究还旨在通过提供适当的工具来使分析和建模过程自动化。

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