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Impacts of networking effects on software reliability growth processes: A multi-attribute utility theory approach

机译:网络效应对软件可靠性增长过程的影响:一种多属性效用理论方法

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摘要

Software reliability growth models, which are based on nonhomogeneous Poisson processes, are widely adopted tools when describing the stochastic failure behavior and measuring the reliability growth in software systems. Faults in the systems, which eventually cause the failures, are usually connected with each other in complicated ways. Considering a group of networked faults, we raise a new model to examine the reliability of software systems and assess the model's performance from real-world data sets. Our numerical studies show that the new model, capturing networking effects among faults, well fits the failure data. We also formally study the optimal software release policy using the multi-attribute utility theory (MAUT), considering both the reliability attribute and the cost attribute. We find that, if the networking effects among different layers of faults were ignored by the software testing team, the best time to release the software package to the market would be much later while the utility reaches its maximum. Sensitivity analysis is further delivered.
机译:基于非均匀泊松过程的软件可靠性增长模型在描述随机故障行为并衡量软件系统的可靠性增长时被广泛采用。最终导致系统故障的系统故障通常以复杂的方式相互连接。考虑到一组网络故障,我们提出了一个新模型来检查软件系统的可靠性,并根据实际数据集评估该模型的性能。我们的数值研究表明,新模型能够捕获故障之间的网络效应,非常适合故障数据。我们还使用多属性效用理论(MAUT)正式研究了最佳软件发布策略,同时考虑了可靠性属性和成本属性。我们发现,如果软件测试团队忽略了不同故障层之间的网络影响,那么将实用程序达到其最大效用的最佳时机就是将软件包发布到市场上的最佳时间。进一步进行敏感性分析。

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