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An empirical analysis and comparison of random testing techniques

机译:随机测试技术的经验分析与比较

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摘要

Testing with randomly generated test inputs, namely Random Testing, is a strategy that has been applied succefully in a lot of cases. Recently, some new adaptive approaches to the random generation of test cases have been proposed. Whereas there are many comparisons of Random Testing with Partition Testing, a systematic comparison of random testing techniques is still missing. This paper presents an empirical analysis and comparison of all random testing techniques from the field of Adaptive Random Testing (ART). The ART algorithms are compared for effectiveness using the mean F-measure, obtained through simulation and mutation analysis, and the P-measure. An interesting connection between the testing effectiveness measures F-measure and P-measure is described. The spatial distribution of test cases is determined to explain the behavior of the methods and identify possible shortcomings. Besides this, both the theoretical asymptotic runtime and the empirical runtime for each method are given.
机译:使用随机生成的测试输入进行的测试(即随机测试)是一种在许多情况下都成功应用的策略。最近,已经提出了一些新的自适应方法来随机生成测试用例。尽管有许多将随机测试与分区测试进行比较的结果,但仍缺少对随机测试技术的系统比较。本文从自适应随机测试(ART)领域对所有随机测试技术进行了实证分析和比较。使用通过模拟和变异分析获得的平均F值以及P值比较ART算法的有效性。描述了测试有效性度量F度量和P度量之间的有趣联系。确定测试用例的空间分布以解释方法的行为并确定可能的缺点。除此之外,还给出了每种方法的理论渐近运行时间和经验运行时间。

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