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Performance Evaluation of Clustering Techniques in Test Case Prioritization

机译:测试用例排序中聚类技术的性能评估

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Regression testing plays a crucial role in maintaining quality of a software, yet accounts for a huge percentage of cost from overall development cost. Selection of regression testing technique directly impacts the software quality, where at first step relevant test cases are selected, then redundant test case are removed during minimization step and at final step test cases are prioritized to execute the most relevant test cases first and so on. The test case prioritization is one of the broadly used approach to reduce cost and time of regression testing. In literature researchers have proposed various methods to prioritize test cases, and clustering is one of the popular and suggested techniques among them. It is an unsupervised method of putting similar data into one cluster and dissimilar data into different cluster and considered to be an important tool for exploratory data analysis. This paper analyses various clustering techniques used for test case prioritization and presents a performance analysis on different hard clustering algorithm and then the test case prioritization techniques are also evaluated using APFD.
机译:回归测试在维持软件质量方面起着至关重要的作用,但在总开发成本中却占了很大比例的成本。回归测试技术的选择直接影响软件质量,首先选择相关的测试用例,然后在最小化步骤中删除冗余的测试用例,并在最后一步确定测试用例的优先级,以便首先执行最相关的测试用例,依此类推。测试用例的优先级排序是减少回归测试的成本和时间的一种广泛使用的方法。在文献中,研究人员提出了各种对测试案例进行优先级排序的方法,而聚类是其中一种流行的建议技术。它是将相似数据放入一个群集中并将不相似数据放入不同群集中的一种无监督方法,被认为是探索性数据分析的重要工具。本文分析了用于测试案例优先级排序的各种聚类技术,并对不同的硬聚类算法进行了性能分析,然后还使用APFD对测试案例优先级排序技术进行了评估。

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