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首页> 外文期刊>American Journal of Operations Research >OSS Project Assessment Based on Discriminant Analysis and Jump Diffusion Process Model for Fault Big Data
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OSS Project Assessment Based on Discriminant Analysis and Jump Diffusion Process Model for Fault Big Data

机译:基于判别分析的OSS项目评估和故障大数据的跳跃扩散过程模型

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The bug tracking system is well known as the project support tool of open source software. There are many categorical data sets recorded on the bug tracking system. In the past, many reliability assessment methods have been proposed in the research area of software reliability. Also, there are several software project analyses based on the software effort data such as the earned value management. In particular, the software reliability growth models can apply to the system testing phase of software development. On the other hand, the software effort analysis can apply to all development phase, because the fault data is only recorded on the testing phase. We focus on the big fault data and effort data of open source software. Then, it is difficult to assess by using the typical statistical assessment method, because the data recorded on the bug tracking system is large scale. Also, we discuss the jump diffusion process model based on the estimation method of jump parameters by using the discriminant analysis. Moreover, we analyze actual big fault data to show numerical examples of software effort assessment considering many categorical data set.
机译:错误跟踪系统是众所周知的开源软件的项目支持工具。错误跟踪系统上记录了许多分类数据集。在过去,在软件可靠性研究领域提出了许多可靠性评估方法。此外,基于诸如赚取的值管理等软件工作数据存在多个软件项目分析。特别是,软件可靠性增长模型可以适用于软件开发的系统测试阶段。另一方面,软件工作量分析可以应用于所有开发阶段,因为故障数据仅在测试阶段上记录。我们专注于开源软件的大故障数据和努力数据。然后,难以使用典型的统计评估方法进行评估,因为在Bug跟踪系统上记录的数据是大规模的。此外,我们通过使用判别分析,基于跳跃参数的估计方法讨论跳跃扩散过程模型。此外,我们分析了考虑许多分类数据集的软件工作评估的数字示例。

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