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Exploring Several Strategies to Improve Software Quality Prediction

机译:探索若干策略,以提高软件质量预测

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This paper investigates an approach for using feature selection and data sampling together to deal with two problems, which often arise in the software quality modeling process, namely high dimensionality of software metric data and class imbalance often found in these data sets. Six commonly used feature ranking techniques and six sampling methods are examined. A case study is performed on three software measurement data sets obtained from the PROMISE repository. The empirical results demonstrate that different feature ranking techniques and sampling methods may significantly affect the performance of classification models.
机译:本文调查了使用特征选择和数据采样的方法来处理两个问题,这些问题通常在软件质量建模过程中出现,即经常在这些数据集中发现的软件度量数据和类别不平衡的高维度。检查六种常用的特征排名技术和六种采样方法。在从Procept Repository获得的三个软件测量数据集上执行案例研究。经验结果表明,不同的特征排名技术和采样方法可能会显着影响分类模型的性能。

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