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Enhance Software Quality Using Data Mining Algorithms

机译:使用数据挖掘算法提高软件质量

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In recent decades the production of large software projects are very large and is costly and time consuming during the phases of software development there are some bugs. Some of the errors generated by the software to detect errors in the initial is phases these errors and may not be seen until the final phases. To clear this error may be the next generation of software. Time and expense of producing the software is error. Error in this phase will increase the cost and time. Over time, larger projects And the error in estimating software cost is higher and higher. and these days detecting the possible defect is one of consideration to rely on software quality. So there is a need to create a prediction model and we can use data mining methods to predict defects. This paper examined ways of imposing clustering on various projects and putting them in groups with the similar characteristics. By using this pattern we can choose a defect predication model that is able to predict the defect of whole group.
机译:在最近的几十年中,大型软件项目的生产非常庞大,并且在软件开发阶段中既昂贵又耗时,存在一些错误。由软件生成以检测初始错误的某些错误是这些错误的阶段,直到最终阶段才可能看到。要清除此错误,可能是下一代软件。生产软件的时间和费用是错误的。此阶段中的错误将增加成本和时间。随着时间的流逝,更大的项目以及估计软件成本的错误越来越高。目前,检测可能的缺陷是依赖软件质量的考虑因素之一。因此,需要创建一个预测模型,并且我们可以使用数据挖掘方法来预测缺陷。本文研究了将聚类强加于各种项目并将其分组为具有相似特征的方法。通过使用这种模式,我们可以选择能够预测整个团队的缺陷的缺陷预测模型。

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