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首页> 外文期刊>International journal of software innovation >Building Ant System for Multi- Faceted Test Case Prioritization: An Empirical Study
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Building Ant System for Multi- Faceted Test Case Prioritization: An Empirical Study

机译:构建用于多方面测试用例优先级的蚂蚁系统:一项实证研究

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摘要

This article presents the empirical study of multi-criteria test case prioritization. In this article, a test case prioritization problem with time constraints is being solved by using the ant colony optimization (ACO) approach. The ACO is a meta-heuristic and nature-inspired approach that has been applied for the statement of a coverage-based test case prioritization problem. The proposed approach ranks test cases using statement coverage as a fitness criteria and the execution time as a constraint. The proposed approach is implemented in MatLab and validated on widely used benchmark dataset, freely available on the Software Infrastructure Repository (SIR). The results of experimental study show that the proposed ACO based approach provides near optimal solution to test case prioritization problem.
机译:本文介绍了多标准测试案例优先级的实证研究。本文中,通过使用蚁群优化(ACO)方法解决了具有时间限制的测试用例优先级问题。 ACO是一种基于元启发法和自然启发的方法,已用于陈述基于覆盖率的测试用例优先级问题。所提出的方法使用语句覆盖率作为适合性标准并将执行时间作为约束对测试用例进行排名。所提出的方法在MatLab中实现,并在广泛使用的基准数据集上进行了验证,该数据集可在软件基础结构存储库(SIR)中免费获得。实验研究结果表明,所提出的基于ACO的方法可以为测试用例的优先级排序问题提供最佳解决方案。

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