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A systematic review of statistical power in software engineering experiments

机译:系统评价软件工程实验中的统计能力

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摘要

Statistical power is an inherent part of empirical studies that employ significance testing and is essential for the planning of studies, for the interpretation of study results, and for the validity of study conclusions. This paper reports a quantitative assessment of the statistical power of empirical software engineering research based on the 103 papers on controlled experiments (of a total of 5,453 papers) published in nine major software engineering journals and three conference proceedings in the decade 1993-2002. The results show that the statistical power of software engineering experiments falls substantially below accepted norms as well as the levels found in the related discipline of information systems research. Given this study's findings, additional attention must be directed to the adequacy of sample sizes and research designs to ensure acceptable levels of statistical power. Furthermore, the current reporting of significance tests should be enhanced by also reporting effect sizes and confidence intervals.
机译:统计能力是采用显着性检验的经验研究的固有部分,对于研究计划,研究结果的解释以及研究结论的有效性至关重要。本文基于1993-2002十年间在九种主要软件工程期刊上发表的103篇受控实验论文(总共5,453篇论文)中,对实证软件工程研究的统计能力进行了定量评估。结果表明,软件工程实验的统计能力大大低于公认的准则以及信息系统研究相关学科中的水平。鉴于这项研究的发现,必须进一步关注样本量和研究设计的充分性,以确保可接受的统计功效水平。此外,还应通过报告效应大小和置信区间来增强当前的重要性测试报告。

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