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Generalized Cox Proportional Hazards Regression-Based Software Reliability Modeling with Metrics Data

机译:基于度量数据的基于Cox比例风险回归的广义软件可靠性建模

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Multifactor software reliability modeling with software test metrics data is well known to be useful for predicting the software reliability with higher accuracy, because it utilizes not only software fault count data but also software testing metrics data observed in the development process. In this paper we generalize the existing Cox proportional hazards regression-based software reliability model by introducing more generalized hazards representation, and improve the goodness-of-fit and predictive performances. In numerical examples with real software development project data, we show that our generalized model can significantly outperform several logistic regression-based models as well as the existing Cox proportional hazards regression-based model.
机译:众所周知,具有软件测试指标数据的多因素软件可靠性建模可用于以更高的准确度预测软件可靠性,因为它不仅利用软件故障计数数据,而且利用在开发过程中观察到的软件测试指标数据。在本文中,我们通过引入更广义的危害表示法来泛化现有的基于Cox比例危害回归的软件可靠性模型,并改善拟合优度和预测性能。在带有实际软件开发项目数据的数值示例中,我们表明,我们的广义模型可以显着优于几种基于逻辑回归的模型以及现有的基于Cox比例风险回归的模型。

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