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Who's This? Developer Identification Using IDE Event Data

机译:这是谁?使用IDE事件数据识别开发人员

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This paper presents a technique to identify a developer based on their IDE event data. We exploited the KaVE data set which recorded IDE activities from 85 developers with 11M events. We found that using an SVM with a linear kernel on raw event count outperformed k-NN in identifying developers with an accuracy of 0.52. Moreover, after setting the optimal number of events and sessions to train the classifier, we achieved a higher accuracy of 0.69 and 0.71 respectively. The findings shows that we can identify developers based on their IDE event data. The technique can be expanded further to group similar developers for IDE feature recommendations.
机译:本文提出了一种基于IDE事件数据识别开发人员的技术。我们利用了KaVE数据集,该数据集记录了来自85个开发人员的1100万个IDE活动。我们发现,在原始事件计数上使用带有线性内核的SVM在识别精度为0.52的开发人员方面优于k-NN。此外,在设置最佳事件和会话数以训练分类器之后,我们分别获得了0.69和0.71的更高准确度。调查结果表明,我们可以根据开发人员的IDE事件数据来识别他们。可以进一步扩展该技术,以将类似的开发人员分组以提供IDE功能推荐。

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