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Cost-Effective Build Outcome Prediction Using Cascaded Classifiers

机译:使用级联分类器的经济有效的构建结果预测

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Software developers use continuous integration to find defects in the early stage and reduce risk. But this process can be resource and time consuming, which decreases the efficiency of development. In this work, we adopt cascaded classifiers to predict the build outcome and study what kinds of attributes are potentially useful for this process. We emphasize on the "failed" instances which bring more cost. Our experiments reveal that our approach outperforms other commonly used classifiers. It reduces 51.7% of the waiting time and server workload while identifying 85.2% of the defective builds.
机译:软件开发人员使用持续集成来查找早期阶段的缺陷并降低风险。但此过程可以是资源和耗时,这降低了开发效率。在这项工作中,我们采用级联的分类器来预测构建结果,并研究什么类型的属性对此过程有用。我们强调了“失败”的情况,带来了更多成本。我们的实验表明,我们的方法优于其他常用的分类器。它减少了51.7 %的等待时间和服务器工作负载,同时识别85.2 %的有缺陷构建。

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