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Comprehensive evaluation of association measures for fault localization

机译:综合评估故障定位的措施

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In statistics and data mining communities, there have been many measures proposed to gauge the strength of association between two variables of interest, such as odds ratio, confidence, Yule-Y, Yule-Q, Kappa, and gini index. These association measures have been used in various domains, for example, to evaluate whether a particular medical practice is associated positively to a cure of a disease or whether a particular marketing strategy is associated positively to an increase in revenue, etc. This paper models the problem of locating faults as association between the execution or non-execution of particular program elements with failures. There have been special measures, termed as suspiciousness measures, proposed for the task. Two state-of-the-art measures are Tarantula and Ochiai, which are different from many other statistical measures. To the best of our knowledge, there is no study that comprehensively investigates the effectiveness of various association measures in localizing faults. This paper fills in the gap by evaluating 20 well-known association measures and compares their effectiveness in fault localization tasks with Tarantula and Ochiai. Evaluation on the Siemens programs show that a number of association measures perform statistically comparable as Tarantula and Ochiai.
机译:在统计和数据挖掘社区中,已经提出了许多措施来衡量感兴趣的两个变量之间的关联强度,例如优势比,置信度,Yule-Y,Yule-Q,Kappa和基尼系数。这些关联度量已在各个领域中使用,例如,评估特定的医疗实践是否与某种疾病的治疗呈正相关,或者特定的营销策略是否与收益的增加呈正相关,等等。将故障定位为特定程序元素的执行或不执行与故障之间的关联的问题。为此任务提出了一些特殊措施,称为可疑措施。两种最先进的度量标准是塔兰图拉毒蛛和大内恋(Ochiai),它们与许多其他统计度量标准不同。据我们所知,尚无研究全面调查各种关联措施在定位故障中的有效性。本文通过评估20种著名的关联度量来填补空白,并与Tarantula和Ochiai比较它们在断层定位任务中的有效性。对Siemens程序的评估表明,许多关联度量在统计上可与Tarantula和Ochiai媲美。

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