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Using Behavioral Data to Identify Interviewer Fabrication in Surveys

机译:使用行为数据识别调查中的采访者身份

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Surveys conducted by human interviewers are one of the principal means of gathering data from all over the world, but the quality of this data can be threatened by interviewer fabrication. In this paper, we investigate a new approach to detecting interviewer fabrication automatically. We instrument electronic data collection software to record logs of low-level behavioral data and show that supervised classification, when applied to features extracted from these logs, can identify interviewer fabrication with an accuracy of up to 96%. We show that even when interviewers know that our approach is being used, have some knowledge of how it works, and are incentivized to avoid detection, it can still achieve an accuracy of 86%. We also demonstrate the robustness of our approach to a moderate amount of label noise and provide practical recommendations, based on empirical evidence, on how much data is needed for our approach to be effective.
机译:人工访问员进行的调查是从世界各地收集数据的主要手段之一,但是访问员的捏造可能会威胁到这些数据的质量。在本文中,我们研究了一种自动检测采访者捏造的新方法。我们使用电子数据收集软件来记录低级行为数据的日志,并表明,将监督分类应用于从这些日志中提取的特征时,可以识别采访员的伪造品,其准确性高达96%。我们表明,即使访问员知道我们的方法正在使用,对它的工作原理有所了解,并且被激励避免被发现,它仍然可以达到86%的准确性。我们还展示了我们的方法对适度标签噪声的鲁棒性,并根据经验证据,为使我们的方法有效需要多少数据,提供了实用的建议。

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