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首页> 外文期刊>International journal of software engineering and knowledge engineering >Empirical Study on the Distribution of Bugs in Software Systems
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Empirical Study on the Distribution of Bugs in Software Systems

机译:软件系统中错误分布的实证研究

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摘要

Many research studies in the past have shown that the distribution of bugs in software systems follows the Pareto principle. Some studies have also proposed the Pareto distribution (PD) to model bugs in software systems. However, several other probability distributions such as the Weibull, Bounded Generalized Pareto, Double Pareto (DP), Log Normal and Yule-Simon distributions have also been proposed and each of them has been evaluated for their fitness to model bugs in different studies. We investigate this problem further by making use of information theoretic (criterion-based) approaches to model selection by which several issues like overfitting, etc., that are prevalent in previous works, can be handled elegantly. By strengthening the model selection procedure and studying a large collection of fault data, the results are made more accurate and stable. We conduct experiments on fault data from 74 releases of various open source and proprietary software systems and observe that the DP distribution outperforms all others with statistical significance in the case of proprietary projects. For open source software systems, the top three performing distributions are DP, Bounded Generalized Pareto, Weibull models and they are significantly better than all others though there is no significant difference amongst three of them.
机译:过去的许多研究表明,软件系统中的错误分布遵循帕累托原理。一些研究还提出了帕累托分布(PD),以对软件系统中的错误进行建模。但是,还提出了其他几种概率分布,例如Weibull,有界广义Pareto,Double Pareto(DP),对数正态分布和Yule-Simon分布,并在不同研究中对每种概率进行了评估,以适应它们对bug的建模。我们通过利用信息理论(基于标准)的方法进行模型选择来进一步研究该问题,通过该方法可以很好地处理先前工作中普遍存在的一些问题,例如过度拟合等。通过加强模型选择程序并研究大量故障数据,可以使结果更加准确和稳定。我们对来自各种开源和专有软件系统的74个发行版中的故障数据进行了实验,并观察到在专有项目的情况下,DP分发的性能优于所有其他分发软件。对于开源软件系统,性能最高的三个分布是DP,Bounded Generalized Pareto,Weibull模型,尽管它们之间没有显着差异,但它们明显优于所有其他模型。

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