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The Falsified Self: Complexities in Personal Data Collection

机译:伪造的自我:个人数据收集的复杂性

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摘要

Personal Informatics systems collect personal information in order to trigger self-reflection and improve self-knowledge. Users can now choose among different wearable devices for collecting these data according to their needs and desires. These tools exploit not only different shapes and physical forms, but also diverse technologies and algorithms, which may impact the effectiveness of data gathering. In this paper we explored whether there are significant differences in their reported measures and how these can impact the user experience, along with the perceived accuracy of the gathered data and the perceived reliability of the device. To this aim, we carried out an autoethnography which lasted 4 weeks, monitoring the number of steps and the distance covered during the day and the sleep period through different wearables. The results showed that there are wide differences among diverse tools and these differences greatly influence how data collected and devices used are perceived.
机译:个人信息学系统收集个人信息,以触发自我反省并提高自我知识。用户现在可以根据自己的需要和期望,在不同的可穿戴设备中进行选择以收集这些数据。这些工具不仅利用不同的形状和物理形式,而且利用各种技术和算法,这可能会影响数据收集的有效性。在本文中,我们探讨了所报告措施中是否存在重大差异,以及这些差异如何影响用户体验,以及所收集数据的感知准确性和设备可靠性。为此,我们进行了一项持续4周的自动人种志研究,通过不同的可穿戴设备监控白天和睡眠期间的步数和覆盖距离。结果表明,各种工具之间存在很大差异,这些差异极大地影响了收集数据和使用设备的方式。

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