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Predicting defects in SAP Java code: An experience report

机译:预测SAP Java代码中的缺陷:经验报告

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Which components of a large software system are the most defect-prone? In a study on a large SAP Java system, we evaluated and compared a number of defect predictors, based on code features such as complexity metrics, static error detectors, change frequency, or component imports, thus replicating a number of earlier case studies in an industrial context. We found the overall predictive power to be lower than expected; still, the resulting regression models successfully predicted 50-60% of the 20% most defect-prone components.
机译:大型软件系统的哪些组件最容易出现缺陷?在大型SAP Java系统上的研究中,我们基于诸如复杂性度量,静态错误检测器,更改频率或组件导入之类的代码功能,评估并比较了许多缺陷预测器,从而在一个案例中复制了许多早期案例研究。工业环境。我们发现总体预测能力低于预期。尽管如此,最终的回归模型仍成功地预测了20%最容易出现缺陷的组件中的50-60%。

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