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Common threats to software quality predictive modeling studies using search-based techniques

机译:使用基于搜索的技术对软件质量预测建模研究的常见威胁

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Development of Software Quality Predictive Models (SQPM) is an important research area as it helps in effective use of project resources and assures a good quality software product. A number of studies in literature have developed successful SQPM using search-based techniques which are meta-heuristic in nature. However, in order to perform a successful empirical study which develops SQPM using search-based techniques, it is essential to consider various probable sources of threats to the empirical study so that the developed models are realistic and efficient. This study reviews and analyzes 33 empirical studies in literature which have successfully used search-based techniques for prediction of two common software quality attributes i.e. fault-proneness and change-proneness in order to comprehensively present various probable threats to such studies. The study also proposes remedial actions to mitigate these threats and presents an analysis of the most common threats which are missed by researchers.
机译:软件质量预测模型(SQPM)的开发是一个重要的研究领域,因为它有助于有效地使用项目资源并确保高质量的软件产品。许多文献研究已经使用基于搜索的技术开发了成功的SQPM,该搜索技术本质上是元启发式的。但是,为了执行成功的使用基于搜索的技术开发SQPM的经验研究,必须考虑各种可能对经验研究构成威胁的来源,以使开发的模型切实可行。这项研究回顾并分析了文献中的33项实证研究,这些实证研究已成功地使用基于搜索的技术来预测两种常见的软件质量属性(即易错性和易变性),以全面呈现此类研究的各种可能威胁。该研究还提出了缓解这些威胁的补救措施,并对研究人员遗漏的最常见威胁进行了分析。

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