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A Replication Study on Code Comprehension and Expertise using Lightweight Biometric Sensors

机译:使用轻量级生物识别传感器进行代码理解和专业知识的复制研究

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Code comprehension has been recently investigated from physiological and cognitive perspectives using medical imaging devices. Floyd et al. (i.e., the original study) used fMRI to classify the type of comprehension tasks performed by developers and relate their results to their expertise. We replicate the original study using lightweight biometrics sensors. Our study participants—28 undergrads in computer science—performed comprehension tasks on source code and natural language prose. We developed machine learning models to automatically identify what kind of tasks developers are working on leveraging their brain-, heart-, and skin-related signals. The best improvement over the original study performance is achieved using solely the heart signal obtained through a single device (BAC 87%vs. 79.1%). Differently from the original study, we did not observe a correlation between the participants' expertise and the classifier performance (τ= 0.16, p= 0.31). Our findings show that lightweight biometric sensors can be used to accurately recognize comprehension opening interesting scenarios for research and practice.
机译:最近已经使用医学成像设备从生理和认知的角度研究了代码理解。 Floyd等。 (即原始研究)使用功能磁共振成像对开发人员执行的理解任务的类型进行分类,并将其结果与他们的专业知识相关联。我们使用轻量级生物识别传感器复制了原始研究。我们的研究参与者(计算机科学28位本科生)对源代码和自然语言散文执行了理解任务。我们开发了机器学习模型,以自动识别开发人员正在利用其与大脑,心脏和皮肤相关的信号进行的任务。仅使用通过单个设备获得的心脏信号即可实现对原始研究性能的最佳改进(BAC 87%vs. 79.1%)。与原始研究不同,我们没有观察到参与者的专业知识与分类器性能之间的相关性(τ= 0.16,p = 0.31)。我们的发现表明,轻型生物识别传感器可用于准确识别理解力,为研究和实践打开有趣的场景。

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