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Evaluating test-to-code traceability recovery methods through controlled experiments

机译:通过受控实验评估测试到代码的可追溯性恢复方法

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摘要

Recently, different methods and tools have been proposed to automate or semi-automate test-to-code traceability recovery. Among these, Slicing and Coupling based Test to Code trace Hunter (SCOTCH) exploits slicing and conceptual coupling to identify the classes tested by a JUnit test. However, until now the evaluation of test-to-code traceability recovery methods has been limited to experiments assessing their tracing accuracy rather than the actual support these methods provide to a software engineer during traceability recovery tasks. Indeed, a research method or tool has a better chance of being transferred to practitioners if it is supported by empirical evidence. In this paper, we present the results of two controlled experiments carried out to evaluate the support given by SCOTCH during traceability recovery, when compared with other traceability recovery methods. The results show that SCOTCH is able to suggest a higher number of correct links with higher accuracy, thus sensibly improving the performances of software engineers during test-to-code traceability recovery tasks.
机译:最近,已经提出了不同的方法和工具来使测试到代码的可追溯性恢复自动化或半自动化。其中,基于切片和耦合的测试到代码跟踪猎人(SCOTCH)利用切片和概念上的耦合来识别JUnit测试所测试的类。但是,到目前为止,对测试到代码的可追溯性恢复方法的评估仅限于评估其跟踪准确性的实验,而不是这些方法在可追溯性恢复任务期间为软件工程师提供的实际支持。的确,如果有经验证据的支持,研究方法或工具有更好的机会被转给从业者。在本文中,我们提出了两个受控实验的结果,以评估与其他可追溯性恢复方法相比,SCOTCH在可追溯性恢复过程中提供的支持。结果表明,SCOTCH能够以更高的准确性建议更多的正确链接,从而在测试到代码的可追溯性恢复任务期间合理地提高软件工程师的性能。

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