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Defect Prediction of Radar System Software based on Bug Repositories and Behavior Models

机译:基于BUG存储库和行为模型的雷达系统软件缺陷预测

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摘要

Software plays an important role in radar products. Software quality has become one of the key factors of radar quality. The application of defect prediction may help understand the possible distribution of defects and therefore gain confidence regarding radar software quality. With a repository of software bugs and behavior models, a defect prediction approach based on the system-theoretic accident modeling process (STAMP) is proposed for radar system software. Firstly, a radar system software control model is built based on STAMP, the bug repository, and behavior models. A Bayesian network learning model is then constructed on process control models, and a training process is conducted on bug repositories to obtain defect prediction rules. Finally, the rules are applied on targeted radar software to predict possible defects. To verify the effectiveness and applicability of the proposed approach, a case study is also given on some typical radar system software.
机译:软件在雷达产品中发挥着重要作用。 软件质量已成为雷达质量的关键因素之一。 缺陷预测的应用可以有助于了解缺陷的可能分布,从而获得雷达软件质量的信心。 通过软件错误和行为模型的存储库,提出了一种基于系统理论事故建模过程(印章)的缺陷预测方法,用于雷达系统软件。 首先,雷达系统软件控制模型基于邮票,错误存储库和行为模型构建。 然后在过程控制模型上构建贝叶斯网络学习模型,并在错误存储库上进行培训过程以获得缺陷预测规则。 最后,将规则应用于目标雷达软件以预测可能的缺陷。 为了验证所提出的方法的有效性和适用性,还给出了一些典型的雷达系统软件案例研究。

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